Merge branch 'spec-authoring-skills' into sanderling-property-patterns-skill

This commit is contained in:
pj committed 2026-08-15 22:50:56 +05:30
commit 404ce4bcbb
73 files changed
+5386 -469

No files matched your search

+11 -9
View File
@@ -28,15 +28,12 @@ case "$platform" in
examples/folio/app/androidApp/build/outputs/apk/debug/androidApp-debug.apk)
;;
ios)
# --clear-data=false because the caller has just installed a fresh build (a
# freshly installed app IS clear state). The in-run reinstall path is worth
# avoiding here: `simctl uninstall` + `install` immediately followed by the
# XCTest runner's own launch hits "app.folio is unknown to FrontBoard"
# perhaps half the time. The launch RPC is bounded now, so that surfaces
# as an error rather than an indefinite hang, but a failed leg is still a
# failed leg and a fresh install is already clear state.
# Clear state is left at its default, and no --ios-app-path is passed, so
# the driver wipes the app's data container rather than reinstalling. That
# is what the calibrated numbers were measured from, and it keeps the run
# away from the `simctl uninstall` + `install` path that races FrontBoard
# ("app.folio is unknown to FrontBoard"), which needs an app path to reach.
folio_args+=(--platform ios
--clear-data=false
--ios-device "${IOS_DEVICE:-iPhone 16 Pro}")
;;
web)
@@ -192,7 +189,12 @@ if [ "$platform" = "android" ]; then
*) echo "folio/android: the harness failed with exit $code" >&2; exit "$code" ;;
esac
if ! grep -q '"AddTransactionScreen"' "$trace"; then
echo "folio/android: the run never reached AddTransactionScreen, so it never got past login" >&2
# Where it stopped is a much longer question than this gate answers, so
# name the routes the trace holds and leave the diagnosis to the reader.
reached=$(grep -oE '"[A-Za-z0-9]+Screen"' "$trace" | tr -d '"' |
awk '!seen[$0]++' | paste -sd, -) || reached=""
echo "folio/android: the run never reached AddTransactionScreen over $steps steps" >&2
echo "folio/android: routes the trace does record: ${reached:-none}" >&2
exit 1
fi
echo "folio/android: healthy run over $steps steps, reached the transaction screen"
+25 -13
View File
@@ -19,25 +19,25 @@ jobs:
test:
runs-on: ubuntu-latest
steps:
- uses: actions/checkout@v4
- uses: actions/checkout@v7
- name: Set up Go
uses: actions/setup-go@v5
uses: actions/setup-go@v7
with:
go-version-file: go.mod
cache: true
- name: Set up JDK 17
uses: actions/setup-java@v4
uses: actions/setup-java@v5
with:
distribution: temurin
java-version: "17"
- name: Set up Android SDK
uses: android-actions/setup-android@v3
uses: android-actions/setup-android@v4
- name: Set up Node 22
uses: actions/setup-node@v4
uses: actions/setup-node@v7
with:
node-version: "22"
cache: npm
@@ -49,7 +49,7 @@ jobs:
bun-version: "1.3.13"
- name: Cache bun store
uses: actions/cache@v4
uses: actions/cache@v6
with:
path: ~/.bun/install/cache
key: bun-${{ runner.os }}-${{ hashFiles('replay-ui/bun.lock') }}
@@ -74,7 +74,7 @@ jobs:
echo "$(go env GOPATH)/bin" >> "$GITHUB_PATH"
- name: Cache Gradle
uses: actions/cache@v4
uses: actions/cache@v6
with:
path: |
~/.gradle/caches
@@ -95,22 +95,34 @@ jobs:
- name: Run tests
run: make test
# folio is its own gradle build, and the metro plugin it compiles with
# needs a 21 runtime where the sidecar toolchain pins 17. Switching
# JAVA_HOME after `make test` rather than installing both up front
# leaves every step above this one on exactly the JDK it ran on before.
- name: Set up JDK 21 for folio
uses: actions/setup-java@v4
with:
distribution: temurin
java-version: "21"
- name: Run folio's unit tests
run: make test-folio
browser:
runs-on: ubuntu-latest
steps:
- uses: actions/checkout@v4
- uses: actions/checkout@v7
- name: Set up Go
uses: actions/setup-go@v5
uses: actions/setup-go@v7
with:
go-version-file: go.mod
cache: true
# Pin stable: the action's default (latest) pulls a dev Chromium whose
# remote-debugging socket is flaky under the driver, even though the
# browser otherwise launches headless.
# Pin stable: a dev Chromium's remote-debugging socket is flaky under
# the driver, even though the browser otherwise launches headless.
- name: Set up Chrome
uses: browser-actions/setup-chrome@v1
uses: browser-actions/setup-chrome@v2
with:
chrome-version: stable
+3 -3
View File
@@ -22,7 +22,7 @@ jobs:
build:
runs-on: ubuntu-latest
steps:
- uses: actions/checkout@v4
- uses: actions/checkout@v7
- name: Install pandoc
run: sudo apt-get update && sudo apt-get install -y pandoc
@@ -30,7 +30,7 @@ jobs:
- name: Build site
run: make docs
- uses: actions/upload-pages-artifact@v3
- uses: actions/upload-pages-artifact@v5
with:
path: build/site
@@ -41,5 +41,5 @@ jobs:
name: github-pages
url: ${{ steps.deployment.outputs.page_url }}
steps:
- uses: actions/deploy-pages@v4
- uses: actions/deploy-pages@v5
id: deployment
+20 -21
View File
@@ -41,16 +41,16 @@ jobs:
if: ${{ inputs.platforms == 'all' || inputs.platforms == 'android' }}
runs-on: ubuntu-latest
steps:
- uses: actions/checkout@v4
- uses: actions/checkout@v7
- name: Set up Go
uses: actions/setup-go@v5
uses: actions/setup-go@v7
with:
go-version-file: go.mod
cache: true
- name: Set up the JDKs
uses: actions/setup-java@v4
uses: actions/setup-java@v5
with:
distribution: temurin
# The metro gradle plugin folio builds with needs a 21 runtime; the
@@ -60,7 +60,7 @@ jobs:
21
- name: Set up Android SDK
uses: android-actions/setup-android@v3
uses: android-actions/setup-android@v4
- name: Set up bun
uses: oven-sh/setup-bun@v2
@@ -68,7 +68,7 @@ jobs:
bun-version: "1.3.13"
- name: Cache Gradle
uses: actions/cache@v4
uses: actions/cache@v6
with:
path: |
~/.gradle/caches
@@ -109,7 +109,7 @@ jobs:
- name: Upload the run
if: always()
uses: actions/upload-artifact@v4
uses: actions/upload-artifact@v7
with:
name: folio-android
path: runs/
@@ -120,10 +120,10 @@ jobs:
if: ${{ inputs.platforms == 'all' || inputs.platforms == 'ios' }}
runs-on: macos-15
steps:
- uses: actions/checkout@v4
- uses: actions/checkout@v7
- name: Set up Go
uses: actions/setup-go@v5
uses: actions/setup-go@v7
with:
go-version-file: go.mod
cache: true
@@ -139,7 +139,7 @@ jobs:
run: brew install facebook/fb/idb-companion xcodegen just
- name: Set up the JDKs
uses: actions/setup-java@v4
uses: actions/setup-java@v5
with:
distribution: temurin
# The metro gradle plugin folio builds with needs a 21 runtime; the
@@ -152,13 +152,13 @@ jobs:
# project, which configures :app:androidApp and so needs an Android SDK
# even on this leg.
- name: Set up Android SDK
uses: android-actions/setup-android@v3
uses: android-actions/setup-android@v4
# Both asset tarballs are built by the prepare scripts, and the runner
# bundle is an xcodebuild of companion/Sources. Keyed on the scripts and
# the versions the Makefile embeds, so a later run reuses them.
- name: Cache the companion and runner bundles
uses: actions/cache@v4
uses: actions/cache@v6
with:
path: |
internal/driver/ioscompanion/companionassets/assets
@@ -181,9 +181,8 @@ jobs:
env:
IOS_DEVICE: iPhone 16 Pro
# `just ios` leaves the app running, and the run's own clear-data
# reinstall on top of a live app has raced FrontBoard into refusing the
# launch ("app.folio is unknown to FrontBoard") with the run then hanging.
# `just ios` leaves the app running, and the run's first act is to clear
# its state. Stopping it here means the run always opens the same way.
- name: Stop the app before the run
run: xcrun simctl terminate booted app.folio || true
@@ -197,7 +196,7 @@ jobs:
- name: Upload the run
if: always()
uses: actions/upload-artifact@v4
uses: actions/upload-artifact@v7
with:
name: folio-ios
path: runs/
@@ -208,16 +207,16 @@ jobs:
if: ${{ inputs.platforms == 'all' || inputs.platforms == 'web' }}
runs-on: ubuntu-latest
steps:
- uses: actions/checkout@v4
- uses: actions/checkout@v7
- name: Set up Go
uses: actions/setup-go@v5
uses: actions/setup-go@v7
with:
go-version-file: go.mod
cache: true
- name: Set up the JDKs
uses: actions/setup-java@v4
uses: actions/setup-java@v5
with:
distribution: temurin
# The metro gradle plugin folio builds with needs a 21 runtime; the
@@ -232,7 +231,7 @@ jobs:
bun-version: "1.3.13"
- name: Cache Gradle
uses: actions/cache@v4
uses: actions/cache@v6
with:
path: |
~/.gradle/caches
@@ -242,7 +241,7 @@ jobs:
folio-gradle-${{ runner.os }}-
- name: Set up Chrome
uses: browser-actions/setup-chrome@v1
uses: browser-actions/setup-chrome@v2
with:
chrome-version: stable
@@ -271,7 +270,7 @@ jobs:
- name: Upload the run
if: always()
uses: actions/upload-artifact@v4
uses: actions/upload-artifact@v7
with:
name: folio-web
path: runs/
+8 -8
View File
@@ -22,7 +22,7 @@ jobs:
env:
NODE_AUTH_TOKEN: ${{ secrets.NPM_TOKEN }}
steps:
- uses: actions/checkout@v4
- uses: actions/checkout@v7
with:
ref: ${{ inputs.tag || github.ref }}
@@ -33,7 +33,7 @@ jobs:
echo "version=${raw#v}" >> "$GITHUB_OUTPUT"
- name: Set up Node 22
uses: actions/setup-node@v4
uses: actions/setup-node@v7
with:
node-version: "22"
registry-url: "https://registry.npmjs.org"
@@ -65,28 +65,28 @@ jobs:
permissions:
contents: write
steps:
- uses: actions/checkout@v4
- uses: actions/checkout@v7
with:
ref: ${{ inputs.tag || github.ref }}
fetch-depth: 0
- name: Set up Go
uses: actions/setup-go@v5
uses: actions/setup-go@v7
with:
go-version-file: go.mod
cache: true
- name: Set up JDK 17
uses: actions/setup-java@v4
uses: actions/setup-java@v5
with:
distribution: temurin
java-version: "17"
- name: Set up Android SDK
uses: android-actions/setup-android@v3
uses: android-actions/setup-android@v4
- name: Cache Gradle
uses: actions/cache@v4
uses: actions/cache@v6
with:
path: |
~/.gradle/caches
@@ -99,7 +99,7 @@ jobs:
run: make sidecar
- name: Run GoReleaser
uses: goreleaser/goreleaser-action@v6
uses: goreleaser/goreleaser-action@v7
with:
version: "~> v2"
args: release --clean
+4 -4
View File
@@ -27,10 +27,10 @@ jobs:
timeout-minutes: 45
runs-on: ubuntu-latest
steps:
- uses: actions/checkout@v4
- uses: actions/checkout@v7
- name: Set up Go
uses: actions/setup-go@v5
uses: actions/setup-go@v7
with:
go-version-file: go.mod
cache: true
@@ -43,7 +43,7 @@ jobs:
# Pinned stable plus the AppArmor sysctl: the same setup ci.yml's browser
# job needs to get headless Chrome up on ubuntu-latest.
- name: Set up Chrome
uses: browser-actions/setup-chrome@v1
uses: browser-actions/setup-chrome@v2
with:
chrome-version: stable
@@ -135,7 +135,7 @@ jobs:
- name: Upload runs
if: always()
uses: actions/upload-artifact@v4
uses: actions/upload-artifact@v7
with:
name: replay-ui-runs
path: runs/
+202
View File
@@ -0,0 +1,202 @@
Apache License
Version 2.0, January 2004
http://www.apache.org/licenses/
TERMS AND CONDITIONS FOR USE, REPRODUCTION, AND DISTRIBUTION
1. Definitions.
"License" shall mean the terms and conditions for use, reproduction,
and distribution as defined by Sections 1 through 9 of this document.
"Licensor" shall mean the copyright owner or entity authorized by
the copyright owner that is granting the License.
"Legal Entity" shall mean the union of the acting entity and all
other entities that control, are controlled by, or are under common
control with that entity. For the purposes of this definition,
"control" means (i) the power, direct or indirect, to cause the
direction or management of such entity, whether by contract or
otherwise, or (ii) ownership of fifty percent (50%) or more of the
outstanding shares, or (iii) beneficial ownership of such entity.
"You" (or "Your") shall mean an individual or Legal Entity
exercising permissions granted by this License.
"Source" form shall mean the preferred form for making modifications,
including but not limited to software source code, documentation
source, and configuration files.
"Object" form shall mean any form resulting from mechanical
transformation or translation of a Source form, including but
not limited to compiled object code, generated documentation,
and conversions to other media types.
"Work" shall mean the work of authorship, whether in Source or
Object form, made available under the License, as indicated by a
copyright notice that is included in or attached to the work
(an example is provided in the Appendix below).
"Derivative Works" shall mean any work, whether in Source or Object
form, that is based on (or derived from) the Work and for which the
editorial revisions, annotations, elaborations, or other modifications
represent, as a whole, an original work of authorship. For the purposes
of this License, Derivative Works shall not include works that remain
separable from, or merely link (or bind by name) to the interfaces of,
the Work and Derivative Works thereof.
"Contribution" shall mean any work of authorship, including
the original version of the Work and any modifications or additions
to that Work or Derivative Works thereof, that is intentionally
submitted to Licensor for inclusion in the Work by the copyright owner
or by an individual or Legal Entity authorized to submit on behalf of
the copyright owner. For the purposes of this definition, "submitted"
means any form of electronic, verbal, or written communication sent
to the Licensor or its representatives, including but not limited to
communication on electronic mailing lists, source code control systems,
and issue tracking systems that are managed by, or on behalf of, the
Licensor for the purpose of discussing and improving the Work, but
excluding communication that is conspicuously marked or otherwise
designated in writing by the copyright owner as "Not a Contribution."
"Contributor" shall mean Licensor and any individual or Legal Entity
on behalf of whom a Contribution has been received by Licensor and
subsequently incorporated within the Work.
2. Grant of Copyright License. Subject to the terms and conditions of
this License, each Contributor hereby grants to You a perpetual,
worldwide, non-exclusive, no-charge, royalty-free, irrevocable
copyright license to reproduce, prepare Derivative Works of,
publicly display, publicly perform, sublicense, and distribute the
Work and such Derivative Works in Source or Object form.
3. Grant of Patent License. Subject to the terms and conditions of
this License, each Contributor hereby grants to You a perpetual,
worldwide, non-exclusive, no-charge, royalty-free, irrevocable
(except as stated in this section) patent license to make, have made,
use, offer to sell, sell, import, and otherwise transfer the Work,
where such license applies only to those patent claims licensable
by such Contributor that are necessarily infringed by their
Contribution(s) alone or by combination of their Contribution(s)
with the Work to which such Contribution(s) was submitted. If You
institute patent litigation against any entity (including a
cross-claim or counterclaim in a lawsuit) alleging that the Work
or a Contribution incorporated within the Work constitutes direct
or contributory patent infringement, then any patent licenses
granted to You under this License for that Work shall terminate
as of the date such litigation is filed.
4. Redistribution. You may reproduce and distribute copies of the
Work or Derivative Works thereof in any medium, with or without
modifications, and in Source or Object form, provided that You
meet the following conditions:
(a) You must give any other recipients of the Work or
Derivative Works a copy of this License; and
(b) You must cause any modified files to carry prominent notices
stating that You changed the files; and
(c) You must retain, in the Source form of any Derivative Works
that You distribute, all copyright, patent, trademark, and
attribution notices from the Source form of the Work,
excluding those notices that do not pertain to any part of
the Derivative Works; and
(d) If the Work includes a "NOTICE" text file as part of its
distribution, then any Derivative Works that You distribute must
include a readable copy of the attribution notices contained
within such NOTICE file, excluding those notices that do not
pertain to any part of the Derivative Works, in at least one
of the following places: within a NOTICE text file distributed
as part of the Derivative Works; within the Source form or
documentation, if provided along with the Derivative Works; or,
within a display generated by the Derivative Works, if and
wherever such third-party notices normally appear. The contents
of the NOTICE file are for informational purposes only and
do not modify the License. You may add Your own attribution
notices within Derivative Works that You distribute, alongside
or as an addendum to the NOTICE text from the Work, provided
that such additional attribution notices cannot be construed
as modifying the License.
You may add Your own copyright statement to Your modifications and
may provide additional or different license terms and conditions
for use, reproduction, or distribution of Your modifications, or
for any such Derivative Works as a whole, provided Your use,
reproduction, and distribution of the Work otherwise complies with
the conditions stated in this License.
5. Submission of Contributions. Unless You explicitly state otherwise,
any Contribution intentionally submitted for inclusion in the Work
by You to the Licensor shall be under the terms and conditions of
this License, without any additional terms or conditions.
Notwithstanding the above, nothing herein shall supersede or modify
the terms of any separate license agreement you may have executed
with Licensor regarding such Contributions.
6. Trademarks. This License does not grant permission to use the trade
names, trademarks, service marks, or product names of the Licensor,
except as required for reasonable and customary use in describing the
origin of the Work and reproducing the content of the NOTICE file.
7. Disclaimer of Warranty. Unless required by applicable law or
agreed to in writing, Licensor provides the Work (and each
Contributor provides its Contributions) on an "AS IS" BASIS,
WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or
implied, including, without limitation, any warranties or conditions
of TITLE, NON-INFRINGEMENT, MERCHANTABILITY, or FITNESS FOR A
PARTICULAR PURPOSE. You are solely responsible for determining the
appropriateness of using or redistributing the Work and assume any
risks associated with Your exercise of permissions under this License.
8. Limitation of Liability. In no event and under no legal theory,
whether in tort (including negligence), contract, or otherwise,
unless required by applicable law (such as deliberate and grossly
negligent acts) or agreed to in writing, shall any Contributor be
liable to You for damages, including any direct, indirect, special,
incidental, or consequential damages of any character arising as a
result of this License or out of the use or inability to use the
Work (including but not limited to damages for loss of goodwill,
work stoppage, computer failure or malfunction, or any and all
other commercial damages or losses), even if such Contributor
has been advised of the possibility of such damages.
9. Accepting Warranty or Additional Liability. While redistributing
the Work or Derivative Works thereof, You may choose to offer,
and charge a fee for, acceptance of support, warranty, indemnity,
or other liability obligations and/or rights consistent with this
License. However, in accepting such obligations, You may act only
on Your own behalf and on Your sole responsibility, not on behalf
of any other Contributor, and only if You agree to indemnify,
defend, and hold each Contributor harmless for any liability
incurred by, or claims asserted against, such Contributor by reason
of your accepting any such warranty or additional liability.
END OF TERMS AND CONDITIONS
APPENDIX: How to apply the Apache License to your work.
To apply the Apache License to your work, attach the following
boilerplate notice, with the fields enclosed by brackets "[]"
replaced with your own identifying information. (Don't include
the brackets!) The text should be enclosed in the appropriate
comment syntax for the file format. We also recommend that a
file or class name and description of purpose be included on the
same "printed page" as the copyright notice for easier
identification within third-party archives.
Copyright 2026 Priyanshu Jain
Licensed under the Apache License, Version 2.0 (the "License");
you may not use this file except in compliance with the License.
You may obtain a copy of the License at
http://www.apache.org/licenses/LICENSE-2.0
Unless required by applicable law or agreed to in writing, software
distributed under the License is distributed on an "AS IS" BASIS,
WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
See the License for the specific language governing permissions and
limitations under the License.
+9 -1
View File
@@ -29,7 +29,7 @@ WEB_DIST := replay-ui/dist
GOLINES := $(shell $(GO) env GOPATH)/bin/golines
.PHONY: bootstrap proto sidecar sidecar-embed sanderling sanderling-web sanderling-android sanderling-ios install test test-go test-browser test-companion test-kotlin test-spec-api test-ci-scripts spec-typecheck web-test web-typecheck web-build web-dev replay-dev docs clean release-cli release-npm-dry fmt fmt-go fmt-kotlin fmt-ts fmt-swift
.PHONY: bootstrap proto sidecar sidecar-embed sanderling sanderling-web sanderling-android sanderling-ios install test test-go test-browser test-companion test-kotlin test-folio test-spec-api test-ci-scripts spec-typecheck web-test web-typecheck web-build web-dev replay-dev docs clean release-cli release-npm-dry fmt fmt-go fmt-kotlin fmt-ts fmt-swift
bootstrap:
$(GO) mod download
@@ -145,6 +145,14 @@ test-companion: $(COMPANION_EMBED) $(RUNNER_EMBED)
test-kotlin:
ANDROID_HOME=$(ANDROID_HOME) $(GRADLE) :sidecar:test
# folio is its own gradle build, so nothing in the root build runs its tests.
# Kept out of `test` because the metro plugin folio compiles with needs a 21+
# runtime, where the sidecar toolchain pins 17: folding this in would raise the
# JDK floor of the target everyone runs constantly. CI runs it as its own step.
test-folio:
cd examples/folio && ANDROID_HOME=$(ANDROID_HOME) $(GRADLE) \
:core:testDebugUnitTest :app:shared:testDebugUnitTest
# The CI scripts that read a trace and decide whether a green leg is
# evidence. bash and python3 only, which is all a runner has.
test-ci-scripts:
+27
View File
@@ -9,6 +9,7 @@ enum AppLifecycle {
}
static func launch(bundleIdentifier: String, foregroundIfRunning: Bool) throws {
var reached = XCUIApplication.State.unknown
try onMainCatching {
let application = XCUIApplication(bundleIdentifier: bundleIdentifier)
if foregroundIfRunning {
@@ -18,6 +19,17 @@ enum AppLifecycle {
} else {
application.launch()
}
reached = application.state
}
// A refused launch is recorded as a test issue that never throws, so
// without this the runner answers ok for an app that is not running
// and the host learns nothing until its own bound expires.
switch reached {
case .runningForeground, .runningBackground, .runningBackgroundSuspended:
return
default:
throw LifecycleError.failed(
"\(bundleIdentifier) is \(name(of: reached)) after launch")
}
}
@@ -54,6 +66,21 @@ enum AppLifecycle {
return result
}
private static func name(of state: XCUIApplication.State) -> String {
switch state {
case .runningForeground:
return "foreground"
case .runningBackground:
return "background"
case .runningBackgroundSuspended:
return "suspended"
case .notRunning:
return "not running"
default:
return "unknown"
}
}
// onMainCatching runs automation work on the main thread and converts a
// framework assertion into a thrown error so the server survives it.
private static func onMainCatching(_ work: @escaping () -> Void) throws {
+98 -17
View File
@@ -96,27 +96,90 @@ The wasmJs app is served with `Cross-Origin-Opener-Policy` and
cross-origin isolation. Served without them the app loads a blank canvas and
every step observes an empty accessibility tree.
The seeds are calibrated, not guessed. On an M-series mac, web seed 3 convicts at
step 185-187 and ios seed 7 at step 97-101, each 3 runs out of 3 and each with a
delta of exactly twice the typed amount. Both run a 240-step budget. Keep them
pinned: honest evidence is rare, and across 2261 ios steps only one submit tap
landing on Home had a single-submit window.
The seeds are calibrated, not guessed, and every number here says which host it
was measured on, because the hosts do not agree. On an M3 mac driving iOS 26.1
simulators, ios seed 7 convicts at step 97-101, 11 runs out of 11 from a cleared
install, each on both properties and each with the balance moving by exactly
twice the typed amount: 199 typed, 39800 cents moved, one account's transaction
count rising by two against a window holding one submit. Web seed 3 convicts at
step 185-187 on that mac and at step 192 on the ubuntu runner. Both legs run a
240-step budget.
Android runs seed 9 over 200 steps: its conviction lands at step 178, so a
What those numbers assume is a cleared starting state, and that is the only thing
that moved them. Measured four ways on one simulator, seed 7 convicts at step 97
from a fresh install with clear-state on, at 100 from a fresh install with it
off, and at 97 from a dirty container with it on. It walks 240 steps clean
exactly once: dirty container, clear-state off, where the app opens already
signed in on the previous run's accounts and the walk diverges at step 1. The leg
therefore clears state for itself rather than relying on how it was called.
Do not read a mac number as a statement about CI. **The ios leg does not
currently convict on the runner at all**, and no seed fixes that. Seed 7 and seed
28 were both dispatched against macos-15 and both ran 240 steps clean, from the
state the mac convicts from.
Seed 7 diverges: the two walks agree action for action through step 48, where a
double-tapped submit lands, and there the mac's next snapshot showed Home while
the runner's still showed the transaction screen. Past that they are unrelated
walks.
Seed 28 is the informative one, because it did not diverge. It double-tapped
Submit on the runner at step 32, which is exactly where it convicts on the mac 8
runs out of 8. The counting invariant still could not judge it, and the trace
says why. `submitCommitsOneTransactionPerAction` only evaluates when a Home
reading arrives, and that run went from step 19 to step 136 without once
returning Home:
step 19 null -> {Checking: 0} submits 0
step 136 {Checking: 0} -> {Checking: 15} submits 37
step 164 {Checking: 15} -> {Checking: 19} submits 7
step 222 {..., Travel: 0} -> {Checking: 25, Travel: 0} submits 13
step 239 {Checking: 25} -> {Checking: 26, Travel: 0} submits 1
A rise of 15 against a window of 37 is not a violation, and neither is 4 against
7, 6 against 13, or 1 against 1. The property is sound; it needs a window holding
roughly one submit before it can convict, and whether the walk closes the window
soon after a double tap is timing dependent.
So reaching the bug is necessary and not sufficient. Across 2411 swept steps only
14 double-tapped Submit at all, and only one of those landed in a window the
counting invariant could judge. Until the property can attribute a submit without
waiting for Home, treat an ios pass as evidence and an ios failure as unproven.
The transaction rows carry a `LedgerRow` test tag on the ledger screen, which the
walk visits far more often than Home, so a count that does not depend on Home is
available; it needs per-account attribution, since the ledger shows one account
where Home shows all of them.
Android runs seed 9 over 200 steps. Its conviction lands around step 178, and a
shorter budget would never see the bonus. A full run costs about five minutes.
Repeating the ios leg by hand is not the same as running it in CI: with
`--clear-data=false` a second local run inherits the first one's accounts, so
`simctl uninstall` before each repeat or the numbers drift.
That step number was measured on a local emulator with animations ON, and the CI
job sets `disable-animations: true`, so it does not describe the CI leg. The
worry that follows is that zeroing the 700ms Compose fade would stop the leg
exercising the cross-fade wait entirely. The first real dispatch says otherwise:
its 200-step trace carries 4 `transitional` steps, so the wait still fires, just
far less often than it does locally. Treat the android number as an order of
magnitude, not a pin. It is a health gate, so nothing keys on it.
The ios leg passes `--clear-data=false`, because the job installs a fresh build
immediately before the run and a freshly installed app is already clear state.
The in-run reinstall is worth avoiding: `simctl uninstall` + `install` followed
straight away by the XCTest runner's own launch fails with `app.folio is unknown
to FrontBoard` maybe half the time. That used to hang the run outright; the
launch RPC is bounded now, so it fails in about 90 seconds with a real error
instead, but a failing leg is still a failing leg. The job timeouts are the
backstop if it happens anyway.
Repeating the ios leg by hand needs nothing special now, because the run clears
the app's state itself. It used to: `just ios` installs over the top without
uninstalling and folio's signed-in session survives that, so a repeat under the
old `--clear-data=false` opened on the previous run's Home screen and diverged at
step 1. That is how the leg came to look dead while the app and the seed were
both fine, and it is worth recognising: a leg that reports "the double-submit bug
was NOT found" from a machine that has been running the app all day is describing
the machine.
The ios leg clears state and passes no `--ios-app-path`, which is deliberate:
without an app path the driver wipes the app's data container instead of
reinstalling, and the reinstall is the path that races FrontBoard. `simctl
uninstall` + `install` followed straight away by the XCTest runner's own launch
has failed with `app.folio is unknown to FrontBoard` about half the time on the
host that reported it. That race is untouched and still open; the leg simply
does not take that path. It did not reproduce here at all, in 20 consecutive
reinstall-and-launch cycles on iOS 26.1, 10 of them reinstalling on top of a
live app, so any fix for it has to be developed on a host that can still show it
failing.
Only one sanderling run may drive a given simulator at a time. The driver takes
an advisory lock on the target's UDID and a second run is refused with the lock
@@ -177,3 +240,21 @@ do not raise the step budget blindly - run a seed sweep with the campaign tool
(`cmd/internal-tools/campaign`), which exists for exactly this, and pin a seed
that finds the bug with room to spare. A leg failing with "a predicate threw" is
a different problem entirely and no seed will fix it.
Sweep in the leg's own configuration, though. The campaign tool and the ios leg
now clear state the same way, so a swept seed means what the leg means, but the
starting frame is not a detail you can skip checking: while the leg still passed
`--clear-data=false`, seed 14 convicted at step 17 in 2 campaign runs out of 2
and in 0 leg-shaped runs out of 3. Prefer the earliest conviction on offer over
the first one found, too. A run reproduces its trajectory on another host only
for as long as every snapshot agrees, and every step of prefix is another chance
for it not to: seeds convicting at steps 33, 60, 114, 187 and 189 all turned up
within the first 30, so an early one is usually there to be found.
A short prefix is necessary and not sufficient, though, and ios is the standing
counter-example: seed 28 has the shortest prefix on offer, reproduced its walk on
the runner exactly, reached the bug at step 32, and still did not convict,
because the window the counting invariant had to judge it in was 117 steps wide.
Sweeping selects for a seed that reaches the bug. It cannot select for one whose
walk also closes the window, so when a property needs a window, check what the
window looked like and not only that the conviction happened.
+3 -1
View File
@@ -37,7 +37,9 @@ IOS_DEVICE="iPhone 15" just ios # pick a different simulator
`just ios` regenerates `app/iosApp/iosApp.xcodeproj` from `app/iosApp/project.yml`,
builds the KMP framework (`Shared.framework` from `:app:shared`), links it
into the SwiftUI host, installs, and launches.
into the SwiftUI host, uninstalls any previous copy, installs, and launches.
The uninstall matters: folio's signed-in session survives an install over the
top, so without it a run opens on the last run's Home screen.
## Web
@@ -49,6 +49,9 @@ kotlin {
implementation(libs.lifecycle.viewmodel.compose)
implementation(libs.navigation.compose)
}
commonTest.dependencies {
implementation(kotlin("test"))
}
androidMain.dependencies {
implementation(libs.androidx.activity.compose)
}
@@ -3,6 +3,7 @@ package app.folio.feature.ledger
import androidx.lifecycle.ViewModel
import androidx.lifecycle.viewModelScope
import app.folio.core.data.Account
import app.folio.core.data.MAX_TRANSACTION_AMOUNT_CENTS
import app.folio.core.data.Repository
import app.folio.core.data.TxnType
import app.folio.navigation.Navigator
@@ -87,6 +88,10 @@ class AddTransactionViewModel(
form.update { it.copy(error = "Amount must be greater than zero") }
return
}
if (cents > MAX_TRANSACTION_AMOUNT_CENTS) {
form.update { it.copy(error = "Amount is too large (max \$1,000,000.00)") }
return
}
viewModelScope.launch {
try {
repository.createTransaction(accountId, s.type, cents, s.note)
@@ -54,9 +54,8 @@ fun parseCents(input: String): Long? {
val fracPadded = (frac + "00").substring(0, 2)
val wholeLong = whole.toLongOrNull() ?: return null
val fracLong = fracPadded.toLongOrNull() ?: return null
val total = wholeLong * 100 + fracLong
if (total < 0) return null
return total
if (wholeLong > (Long.MAX_VALUE - fracLong) / 100) return null
return wholeLong * 100 + fracLong
}
fun signedAmount(t: Transaction): Long = if (t.type == TxnType.credit) t.amount else -t.amount
@@ -0,0 +1,38 @@
package app.folio.util
import kotlin.test.Test
import kotlin.test.assertEquals
import kotlin.test.assertNull
class ParseCentsTest {
@Test
fun parsesEverydayAmountsExactly() {
assertEquals(1L, parseCents("0.01"))
assertEquals(1234L, parseCents("12.34"))
assertEquals(1250L, parseCents("12.5"))
assertEquals(1200L, parseCents("12.0"))
assertEquals(100000L, parseCents("1000"))
assertEquals(123456L, parseCents("1,234.56"))
}
@Test
fun rejectsEighteenDigitWholeThatWrapsToAPositiveLong() {
assertNull(parseCents("999999999999999999"))
}
@Test
fun rejectsSeventeenDigitWholeThatWrapsToANegativeLong() {
assertNull(parseCents("99999999999999999"))
}
@Test
fun rejectsNineteenDigitWholeThatNoLongerFitsALong() {
assertNull(parseCents("9999999999999999999"))
}
@Test
fun acceptsTheLargestRepresentableAmountAndRejectsOneCentMore() {
assertEquals(Long.MAX_VALUE, parseCents("92233720368547758.07"))
assertNull(parseCents("92233720368547758.08"))
}
}
+4
View File
@@ -35,6 +35,10 @@ kotlin {
api(libs.sqldelight.coroutines.extensions)
api(libs.sqldelight.async.extensions)
}
commonTest.dependencies {
implementation(kotlin("test"))
implementation(libs.kotlinx.coroutines.test)
}
androidMain.dependencies {
implementation(libs.sqldelight.android.driver)
}
@@ -6,6 +6,8 @@ import dev.zacsweers.metro.Inject
import dev.zacsweers.metro.SingleIn
import kotlinx.coroutines.flow.StateFlow
const val MAX_TRANSACTION_AMOUNT_CENTS = 100_000_000L
@SingleIn(AppScope::class)
@Inject
class Repository(private val store: LedgerStore) {
@@ -27,6 +29,7 @@ class Repository(private val store: LedgerStore) {
suspend fun createTransaction(accountId: String, type: TxnType, amount: Long, note: String): Transaction {
require(amount > 0) { "Amount must be greater than zero" }
require(amount <= MAX_TRANSACTION_AMOUNT_CENTS) { "Amount is too large (max \$1,000,000.00)" }
requireNotNull(getAccount(accountId)) { "Account not found" }
val txn = Transaction(
id = Platform.makeId(),
@@ -0,0 +1,66 @@
package app.folio.core.data
import kotlinx.coroutines.flow.MutableStateFlow
import kotlinx.coroutines.test.runTest
import kotlin.test.Test
import kotlin.test.assertEquals
import kotlin.test.assertFailsWith
import kotlin.test.assertTrue
private class FakeLedgerStore : LedgerStore {
override val accounts = MutableStateFlow<List<Account>>(emptyList())
override val transactions = MutableStateFlow<List<Transaction>>(emptyList())
override val session = MutableStateFlow<Session?>(null)
override suspend fun accountExistsByName(name: String): Boolean =
accounts.value.any { it.name == name }
override suspend fun insertAccount(id: String, name: String, createdAt: Long) {
accounts.value = accounts.value + Account(id, name, createdAt)
}
override suspend fun insertTxn(
id: String,
accountId: String,
type: TxnType,
amount: Long,
note: String,
createdAt: Long,
) {
transactions.value = transactions.value + Transaction(id, accountId, type, amount, note, createdAt)
}
override suspend fun upsertSession(user: String, loggedInAt: Long) {
session.value = Session(user, loggedInAt)
}
override suspend fun clearSession() {
session.value = null
}
}
class RepositoryTest {
@Test
fun rejectsAmountAboveOneMillionDollars() = runTest {
val repository = Repository(FakeLedgerStore())
val account = repository.createAccount("Checking")
assertFailsWith<IllegalArgumentException> {
repository.createTransaction(account.id, TxnType.credit, 100_000_001L, "")
}
assertFailsWith<IllegalArgumentException> {
repository.createTransaction(account.id, TxnType.credit, Long.MAX_VALUE, "")
}
assertTrue(repository.transactions.value.isEmpty())
}
@Test
fun acceptsAmountAtOneMillionDollars() = runTest {
val repository = Repository(FakeLedgerStore())
val account = repository.createAccount("Checking")
repository.createTransaction(account.id, TxnType.credit, 100_000_000L, "rent")
assertEquals(listOf(100_000_000L), repository.transactions.value.map { it.amount })
}
}
+1
View File
@@ -14,6 +14,7 @@ sqlite-wasm = "3.53.0-build1"
[libraries]
kotlinx-coroutines-core = { module = "org.jetbrains.kotlinx:kotlinx-coroutines-core", version.ref = "kotlinx-coroutines" }
kotlinx-coroutines-test = { module = "org.jetbrains.kotlinx:kotlinx-coroutines-test", version.ref = "kotlinx-coroutines" }
kotlinx-serialization-json = { module = "org.jetbrains.kotlinx:kotlinx-serialization-json", version.ref = "kotlinx-serialization" }
sqldelight-runtime = { module = "app.cash.sqldelight:runtime", version.ref = "sqldelight" }
+11
View File
@@ -78,6 +78,13 @@ _ensure-device:
echo "emulator did not finish booting in time (see /tmp/folio-emulator.log)" >&2
exit 1
# Run folio's own unit tests. Named test-unit because `test` is the fuzz run.
test-unit:
#!/usr/bin/env bash
set -euo pipefail
export ANDROID_HOME="$(just _android-home)"
./gradlew :core:testDebugUnitTest :app:shared:testDebugUnitTest
# Build the folio debug APK without installing it.
build:
#!/usr/bin/env bash
@@ -130,6 +137,10 @@ ios:
-destination 'platform=iOS Simulator,name={{ios_device}}' \
-derivedDataPath app/iosApp/build \
build | tail -5
# Installing over the top keeps the data container, and folio's signed-in
# session with it, so a run started straight after would open on the last
# run's Home screen instead of Login and diverge at step 1.
xcrun simctl uninstall booted app.folio || true
xcrun simctl install booted "{{ios_app}}"
xcrun simctl launch booted app.folio
+216 -12
View File
@@ -123,6 +123,51 @@ export function readHomeCards<T>(args: {
return { value: reading, carrier: reading, fresh: true };
}
// The balance of the ONE account the ledger and the add-transaction screen are
// showing, and the window it closes.
//
// It exists because the Home readings above close their window only when the
// walk goes back to Home, and a walk inside the transaction flow does not: a
// submit pops back to the ledger it came from, so the fuzzer can add
// transactions all day without Home ever being redrawn. The iOS run in #78 went
// 117 steps between two Home readings and accumulated 37 submits against a rise
// of 15 transactions, which is no evidence about any single action. Both
// screens here carry the account's own balance (LedgerBalance,
// TxnCurrentBalance), so the window between two readings holds one action.
//
// WHICH account is never asked, because inside a run of these two routes it
// cannot change. Route.Ledger is pushed only by tapping a card on Home,
// Route.AddTransaction only by the ledger's own button for its own account, and
// an accepted submit pops back to that same ledger. Reaching another account's
// ledger means passing through Home, and one action reads one frame, so a frame
// that is neither of these two routes always sits in between. Dropping the
// carrier on every such frame, transition frames included, is what makes the
// two compared numbers two readings of one account.
export interface AccountBalanceReading {
value: number | null;
carrier: number | null;
fresh: boolean;
}
function showsOneAccount(route: string | null): boolean {
return route === "ledger" || route === "add-transaction";
}
export function readAccountBalance(args: {
route: string | null;
balanceText: string | undefined;
previousCarrier: number | null;
}): AccountBalanceReading {
const { route, balanceText, previousCarrier } = args;
if (!showsOneAccount(route)) return { value: null, carrier: null, fresh: false };
const balance = parseAccountBalance(balanceText);
// Unreadable is unknown, not a new value: the balance node scrolls off the
// viewport like anything else. The account still cannot have changed, so the
// last number we read is carried across and the window stays open.
if (balance === null) return { value: previousCarrier, carrier: previousCarrier, fresh: false };
return { value: balance, carrier: balance, fresh: true };
}
// state.lastAction as the two hosts build it (internal/verifier/marshal.go
// lastActionFields), read defensively: every field is what a Go struct decided
// to emit, not something this file can trust a compile-time shape for.
@@ -136,6 +181,7 @@ export interface ObservedAction {
kind?: string;
on?: string | object;
applied?: true | null;
relaunched?: true | null;
}
function isTapOn(lastAction: ObservedAction | null, target: string): boolean {
@@ -171,6 +217,19 @@ export function confirmedApplied(lastAction: ObservedAction | null): boolean {
return lastAction != null && lastAction.applied === true;
}
// The runner reports this when its foreground guard had to relaunch the app
// after the action. The action still happened, so it still counts toward how
// many submits a window could hold; what nobody can promise across it is that
// the process survived long enough to commit, or that Home is showing the same
// slice of the account list it was.
//
// `true | null` for the same reason `applied` is: web and iOS cannot read the
// foreground at all, so "no relaunch reported" is not "the app never
// restarted", and only an explicit true licenses declining.
export function acrossRelaunch(lastAction: ObservedAction | null): boolean {
return lastAction != null && lastAction.relaunched === true;
}
// Counts the submit actions inside the window the balance property compares
// over: from the last Home total we read to this step, inclusive of this step's
// action.
@@ -190,16 +249,54 @@ export function confirmedApplied(lastAction: ObservedAction | null): boolean {
// well have landed. Leaving it out is what convicted a healthy app:
// committedTransactionsExceedSubmits saw a transaction rise of one against a
// window of zero and called it a double submit.
//
// A submit the app must have refused does not count, for the mirror reason: it
// cannot have committed anything, so the bound it would raise is slack the app
// can hide a real double submit behind. See submitCouldCommit for what "must
// have refused" is allowed to mean.
export function countSubmitsInWindow(args: {
previousCount: number;
lastAction: ObservedAction | null;
amountText?: string;
fresh: boolean;
}): { reported: number; next: number } {
const { previousCount, lastAction, fresh } = args;
const reported = previousCount + (isTxnSubmitTap(lastAction) ? 1 : 0);
// A relaunch is the one thing that can put a form state on screen other than
// the one the tap read, so the field it draws proves nothing about it.
const refused = !acrossRelaunch(lastAction) && !submitCouldCommit(args.amountText);
const reported = previousCount + (isTxnSubmitTap(lastAction) && !refused ? 1 : 0);
return { reported, next: fresh ? 0 : reported };
}
// Could the app have committed anything for that submit? The amount field as
// the LANDING frame shows it is the form state the tap read: the tap changes
// nothing about it, and one action runs per step, so nothing else could have.
// Off the transaction screen there is no field to read, and undefined is
// unknown, which counts.
//
// False only where Folio's own code must have refused. parseCents takes
// `^\d+(\.\d{1,2})?$` with commas stripped and refuses everything else, and
// AddTransactionViewModel refuses a parsed zero on top of that. An empty field
// never even reaches the parser: TxnSubmit is
// clickable(enabled = amount.isNotBlank()), so the click does not fire.
//
// This is the difference between a bound and a useless one. The window is an
// upper bound on the transactions the interval could hold, and a bound inflated
// by taps that commit nothing is a bound the app can never exceed: the iOS run
// in #78 read a rise of 15 transactions against a window of 37 submits and had
// nothing to say. Measured over four recorded android runs, 19, 11, 25 and 25
// of 35, 26, 42 and 42 submit taps landed with the amount field empty.
//
// An amount too large for a Kotlin Long is refused by the app too, and still
// counts here: over-counting can only cost a detection, and the reading that
// would have to prove the overflow is a float that cannot hold the number.
export function submitCouldCommit(amountText: string | undefined): boolean {
if (amountText === undefined) return true;
const trimmed = amountText.trim().replace(/,/g, "");
if (!/^\d+(\.\d{1,2})?$/.test(trimmed)) return false;
return /[1-9]/.test(trimmed);
}
// Parses formatCents output like "$5.00", "-$1,234.56", "+$0.50" back to
// integer cents. Anything that is not a complete amount is null, not 0: a
// balance we could not read is unknown, and reading it as zero silently moves
@@ -240,6 +337,15 @@ export function cardBalanceText(args: {
return match ? match[0].trim() : undefined;
}
// One account's own balance, off the node whose whole text it is: bare on the
// ledger ("$196.00"), labelled in the add-transaction header
// ("Balance: $196.00"). Anchored at the end for the same reason as above, so
// the label cannot be read as part of the amount.
export function parseAccountBalance(text: string | undefined): number | null {
const match = text?.match(TRAILING_BALANCE);
return match ? parseDollarCents(match[0].trim()) : null;
}
// The result is an identity key, not a display name: off web it is the
// AccountName text, on web it is whatever the merged card text leaves in front
// of the count label, initials and all ("T2Travel" for "Travel 2024"). Its only
@@ -259,6 +365,24 @@ export function cardAccountName(args: {
return head.slice(0, label.index).trim();
}
// The avatar text that opens a merged card's identity key, mirroring Folio's
// initialsOf (app/shared/.../util/Format.kt).
//
// A mirror because the alternative is a suffix test, and a suffix test cannot
// say which card a name belongs to. Drift can only cost a detection: the result
// is compared whole against a card's key, so initials that stop matching the
// app match no card rather than the wrong one.
export function initialsOf(name: string): string {
// Java's \s, which is what Kotlin's Regex("\\s+") compiles to. JS's \s also
// matches the unicode spaces, and would split names the app keeps whole.
const parts = name.trim().split(/[ \t\n\v\f\r]+/).filter(part => part !== "");
const first = parts[0];
const last = parts[parts.length - 1];
if (first === undefined || last === undefined) return "?";
if (parts.length === 1) return first.slice(0, 2).toUpperCase();
return (first.slice(0, 1) + last.slice(0, 1)).toUpperCase();
}
// One card's transaction count, in the strongest form its SOURCE supports. The
// two forms are the whole reason this is not just a number:
//
@@ -331,13 +455,26 @@ export function homeAccountsOf(cards: readonly CardReading[]): Account[] | null
//
// A name carried by more than one card is left out for the same reason, the
// rule createdAccountHasNonZeroBalance applies with `matches.length === 1`:
// nothing here can say which of them a count came from. Folio accepts the same
// account name twice and Home lists whatever fits the viewport, so a reading
// that saw one Travel card and a later one that saw two would otherwise
// subtract two DIFFERENT accounts' counts and convict a healthy app of
// double-submitting. The twin does not have to be readable to spoil the
// identity, so duplicates are counted over every card, not just the usable
// ones. Dropping a card can only ever cost a detection.
// nothing here can say which of them a count came from. Two accounts never
// share a NAME (Accounts.name is UNIQUE and Repository.createAccount rejects
// one already taken, NOCASE), but they can share a KEY, because web's key is
// the card text in front of the digit run, which is the name with any trailing
// digits shaved off it: "Travel1" holding 25 transactions and "Travel12"
// holding 6 both key to "TRTravel" and both read a three-digit run, so
// subtracting one from the other subtracts two unrelated counting series. The
// twin does not have to be readable to spoil the identity, so duplicates are
// counted over every card, not just the usable ones. Dropping a card can only
// ever cost a detection.
//
// What this cannot see is a twin that never shares a reading with its pair, and
// Home lists only what fits the viewport. Nothing computed from the card text
// can: the two cards' text is identical character for character ("TRTravel1"
// followed by "25 transactions" and "TRTravel12" followed by "6 transactions"
// are one string), so no key derived from it separates them. Refusing every run
// that could hide a name's own digits would, at the price of the evidence web
// convicts on today, whose measured witness is a count of 12 rising to 14.
// Separating them needs something the tree does not carry: the account's id on
// the card, or a separator in front of the count.
export function homeTxnCountsOf(cards: readonly CardReading[]): Record<string, TxnCount> | null {
const cardsPerName = new Map<string, number>();
for (const card of cards) cardsPerName.set(card.name, (cardsPerName.get(card.name) ?? 0) + 1);
@@ -381,15 +518,30 @@ export function createdAccountHasNonZeroBalance(args: {
// card to: the card that turned up may be an older account of the same name
// scrolling into view.
if (!confirmedApplied(lastAction)) return false;
// A relaunch draws Home from the top again, so the card that carries the
// typed name may be an older account of that name laid out where the new one
// used to be, and the create may not have reached sqlite at all.
if (acrossRelaunch(lastAction)) return false;
if (before === null || after === null) return false;
const typed = (args.typedName ?? "").trim();
if (typed === "") return false;
// Web merges the card into one node whose text opens with the avatar
// initials, so the identity key is "INInvestments" where android and iOS give
// "Investments"; endsWith covers both. Two cards answering to the same typed
// name (a second "Travel", or a card the tree exposed twice) leave the
// appearance unattributable, so nothing is judged.
const matches = after.filter(account => account.name.endsWith(typed));
// "Investments". Both forms are built from the name that was typed and
// compared whole. A suffix test covered both too, and it also let any OTHER
// account ending in those letters answer for the created one: type "Fund"
// next to an existing "Emergency Fund", have the new card clipped out of the
// reading the way Home clips any card, and the old account is convicted for
// money it has held all along. It cost detections as well, because a typed
// name that two cards end with is judged as unattributable rather than as the
// one card that carries it.
//
// Two cards answering to one key stay unattributable: Accounts.name is UNIQUE
// and Repository.createAccount rejects a name already taken, so that pair is
// a card the tree exposed twice, or two names the merged key cannot tell
// apart.
const mergedKey = initialsOf(typed) + typed;
const matches = after.filter(account => account.name === typed || account.name === mergedKey);
const created = matches.length === 1 ? matches[0] : undefined;
if (created === undefined) return false;
if (before.some(account => account.name === created.name)) return false;
@@ -431,6 +583,54 @@ export function committedTransactionsExceedSubmits(args: {
return committed > submitsInWindow;
}
// The same rule as above, measured in money over the account's own window: one
// submit action can commit one transaction, so the account's balance cannot
// move by more than the amount that submit typed.
//
// An UPPER BOUND, not the equality submitChangesBalanceByTypedAmount uses, and
// that is what makes a one-action window safe. A balance that has not moved is
// a commit still in flight (createTransaction runs in a coroutine), a submit
// the app rejected, or a tap that never landed, and none of those is evidence
// of anything; an equality would convict all three. Moving by MORE than one
// submit's worth is not something a correct app can do: only createTransaction
// moves this number, only a TxnSubmit tap reaches it, and the window holds
// exactly one such tap. A double tap is one action committing two transactions,
// so it moves the balance by twice what was typed and lands here.
//
// A submit the runner could not confirm needs no case of its own for the same
// reason: if it never landed the balance did not move, which is under the
// bound. countSubmitsInWindow counts it either way, so it cannot smuggle a
// second commit into a window that looks like one.
//
// typedAmount is the amount the app parsed for THIS submit (parseTypedAmount
// mirrors parseCents), so every rejected amount and every amount too large to
// hold exactly arrives here as 0 and is vacuous.
//
// The float guards are the ones submitChangesBalanceByTypedAmount explains:
// each balance and the typed amount lose precision on their own past
// Number.MAX_SAFE_INTEGER. Their difference needs none, because a difference
// that is really within a safe typedAmount is itself safe and comes out exact.
export function committedAmountExceedsOneSubmit(args: {
route: string | null;
lastAction: ObservedAction | null;
submitsInWindow: number;
typedAmount: number;
prevAccountBalance: number | null;
currAccountBalance: number | null;
}): boolean {
const { route, lastAction, submitsInWindow, typedAmount } = args;
const { prevAccountBalance, currAccountBalance } = args;
if (!showsOneAccount(route)) return false;
if (!isTxnSubmitTap(lastAction)) return false;
if (submitsInWindow !== 1) return false;
if (typedAmount <= 0) return false;
if (prevAccountBalance === null || currAccountBalance === null) return false;
if (!Number.isSafeInteger(prevAccountBalance)) return false;
if (!Number.isSafeInteger(currAccountBalance)) return false;
if (!Number.isSafeInteger(typedAmount)) return false;
return Math.abs(currAccountBalance - prevAccountBalance) > typedAmount;
}
// How far one account's count rose between two readings, or null when the pair
// is not comparable. Not comparable is not zero: the account drops out of the
// sum entirely, which can only cost a detection.
@@ -510,6 +710,10 @@ export function submitChangesBalanceByTypedAmount(args: {
// runner could not confirm may have committed nothing, and a balance that
// did not move is then exactly what a healthy app looks like.
if (!confirmedApplied(lastAction)) return true;
// The runner restarted the app after this tap, so the process may have died
// between the commit and the sqlite write. A balance that did not move is
// then a healthy app, exactly as it is for a submit that may not have landed.
if (acrossRelaunch(lastAction)) return true;
if (submitsInWindow !== 1) return true;
if (typedAmount === 0) return true;
// An unknown total on either side is not evidence of anything. Comparing one
+70 -6
View File
@@ -17,6 +17,7 @@ import {
cardAccountName,
cardBalanceText,
cardTxnCount,
committedAmountExceedsOneSubmit,
committedTransactionsExceedSubmits,
countSubmitsInWindow,
createdAccountHasNonZeroBalance,
@@ -25,6 +26,7 @@ import {
oncePerFrame,
parseDollarCents,
parseTypedAmount,
readAccountBalance,
readHomeCards,
readHomeTotalBalance,
routeOfFrame,
@@ -102,6 +104,11 @@ const homeCards = oncePerFrame((s: State): CardReading[] =>
// the last-read Home total so `previous` and `current` stay on the same scale.
const homeTotalText = (s: State) => on("home", "TotalBalance")(s)?.text;
// The amount field as the frame a submit landed on shows it, which is the form
// state that submit read. Every window below asks, because a submit the app
// must have refused raises no bound: see submitCouldCommit.
const txnAmountText = oncePerFrame((s: State) => on("add-transaction", "TxnAmountField")(s)?.text);
let lastHomeTotal: number | null = null;
const totalBalance = extract<number | null>("totalBalance", s => {
const reading = readHomeTotalBalance({
@@ -127,6 +134,7 @@ const submitsInWindow = extract("submitsInWindow", s => {
const window = countSubmitsInWindow({
previousCount: submitsSinceHomeTotal,
lastAction: s.lastAction,
amountText: txnAmountText(s),
fresh,
});
submitsSinceHomeTotal = window.next;
@@ -175,12 +183,52 @@ const submitsSinceCounts = extract("submitsSinceCounts", s => {
const window = countSubmitsInWindow({
previousCount: submitsSinceHomeCards,
lastAction: s.lastAction,
amountText: txnAmountText(s),
fresh,
});
submitsSinceHomeCards = window.next;
return window.reported;
});
// The account's own balance, off whichever of its two screens is up. The routes
// are exclusive, so at most one of these resolves and the reading is always one
// account's number. Its carrier is dropped on every other route, which is what
// keeps two readings from spanning two accounts: see readAccountBalance.
const accountBalanceText = (s: State) =>
on("ledger", "LedgerBalance")(s)?.text ?? on("add-transaction", "TxnCurrentBalance")(s)?.text;
let lastAccountBalance: number | null = null;
const accountBalance = extract<number | null>("accountBalance", s => {
const reading = readAccountBalance({
route: routeOf(s),
balanceText: accountBalanceText(s),
previousCarrier: lastAccountBalance,
});
lastAccountBalance = reading.carrier;
return reading.value;
});
// A third window, for the same reason the counting invariant has its own: it
// closes on this reading's freshness, which is a different event again. The
// transaction flow redraws this balance on nearly every frame, so this window
// is the narrow one, usually a single action wide.
let submitsSinceAccountBalance = 0;
const submitsSinceBalance = extract("submitsSinceAccountBalance", s => {
const fresh = readAccountBalance({
route: routeOf(s),
balanceText: accountBalanceText(s),
previousCarrier: null,
}).fresh;
const window = countSubmitsInWindow({
previousCount: submitsSinceAccountBalance,
lastAction: s.lastAction,
amountText: txnAmountText(s),
fresh,
});
submitsSinceAccountBalance = window.next;
return window.reported;
});
const lastAction = extract("lastAction", s => s.lastAction);
const loginEmailField = extract("loginEmailField", on("login", "LoginEmail"));
@@ -232,13 +280,29 @@ const submitMovesBalanceByTypedAmount = always(
// stays sound however wide the window between two Home readings gets, because
// both sides of the comparison accumulate over the same window. It is the
// double-submit stated directly: one tap, two rows.
//
// One rule, two windows. The counting form can only compare two Home readings,
// and a walk that stays inside the transaction flow gives it a window hundreds
// of steps and dozens of submits wide, which is sound and says nothing. The
// second form says the same thing in money about the one account whose screen
// the walk is on, and that window is usually a single action, so it can still
// tell one commit from two: see committedAmountExceedsOneSubmit.
const submitCommitsOneTransactionPerAction = always(
next(() =>
!committedTransactionsExceedSubmits({
countsBefore: homeTxnCounts.previous ?? null,
countsAfter: homeTxnCounts.current,
submitsInWindow: submitsSinceCounts.current,
}),
next(
() =>
!committedTransactionsExceedSubmits({
countsBefore: homeTxnCounts.previous ?? null,
countsAfter: homeTxnCounts.current,
submitsInWindow: submitsSinceCounts.current,
}) &&
!committedAmountExceedsOneSubmit({
route: route.current,
lastAction: lastAction.current,
submitsInWindow: submitsSinceBalance.current,
typedAmount: parseTypedAmount(txnAmountField.previous?.text),
prevAccountBalance: accountBalance.previous ?? null,
currAccountBalance: accountBalance.current,
}),
),
);
+25 -6
View File
@@ -31,17 +31,22 @@ type DeviceOptions struct {
BundleID string
// AppPath is the .app bundle installed via devicectl for clear-state.
AppPath string
// ClearState reinstalls the app while NewDevice runs, before the runner's
// test session exists. Clear state is a property of the driver rather than
// of a launch: see Launch.
ClearState bool
// Output receives the runner session log path and driver warnings.
Output io.Writer
// DoubleTapGapMilliseconds overrides the synthesized double-tap gap.
DoubleTapGapMilliseconds float64
// Test seams. Production leaves them nil and NewDevice wires the real
// build/spawn/tunnel/dial.
spawnRunner func(ctx context.Context, address string) (*exec.Cmd, error)
startTunnel func(ctx context.Context, hardwareUDID, localAddress, devicePort string) (io.Closer, error)
dialRunner func(address string) (transport.Companion, error)
pickAddress func() (string, error)
// build/spawn/tunnel/dial/devicectl.
spawnRunner func(ctx context.Context, address string) (*exec.Cmd, error)
startTunnel func(ctx context.Context, hardwareUDID, localAddress, devicePort string) (io.Closer, error)
dialRunner func(address string) (transport.Companion, error)
pickAddress func() (string, error)
reinstallApp func(ctx context.Context) error
}
// deviceStartupTimeout bounds the runner's startup once its hosting test
@@ -61,6 +66,9 @@ func NewDevice(ctx context.Context, options DeviceOptions) (*Driver, error) {
if options.CoreDeviceID == "" {
return nil, errors.New("ios device: CoreDeviceID is required")
}
if options.ClearState && options.BundleID == "" {
return nil, errors.New("ios device: clear-state needs BundleID: there is nothing to uninstall without it")
}
output := options.Output
if output == nil {
output = io.Discard
@@ -75,6 +83,7 @@ func NewDevice(ctx context.Context, options DeviceOptions) (*Driver, error) {
coreDeviceID: options.CoreDeviceID,
bundleID: options.BundleID,
appPath: options.AppPath,
clearStateAtStartup: options.ClearState,
output: output,
doubleTapGapMilliseconds: gap,
deviceMode: true,
@@ -103,7 +112,10 @@ func NewDevice(ctx context.Context, options DeviceOptions) (*Driver, error) {
// Device seams: clear-state reinstalls via devicectl; the container reset and
// paste grant are simulator-only and become no-ops. The runner types
// natively, so no paste prompt is ever hit.
d.reinstallApp = d.devicectlReinstall
d.reinstallApp = options.reinstallApp
if d.reinstallApp == nil {
d.reinstallApp = d.devicectlReinstall
}
d.resetContainer = d.deviceResetContainerUnsupported
d.grantPaste = func(context.Context) error { return nil }
d.restart = d.respawnDevice
@@ -116,6 +128,13 @@ func NewDevice(ctx context.Context, options DeviceOptions) (*Driver, error) {
}
d.deviceLock = lock
if options.ClearState {
if err := d.clearAppState(ctx); err != nil {
d.Close()
return nil, err
}
}
if err := d.bringUpDevice(ctx); err != nil {
d.Close()
return nil, err
@@ -6,6 +6,7 @@ import (
"io"
"net"
"os/exec"
"slices"
"testing"
"github.com/priyanshujain/sanderling/internal/driver/ioscompanion/transport"
@@ -152,6 +153,35 @@ func TestDeviceEraseAndPressKeyRouteThroughEditor(t *testing.T) {
}
}
func TestNewDeviceReinstallsOnceBeforeTheRunnerSession(t *testing.T) {
address := startLoopbackListener(t)
probe := &clearStateProbe{}
options := testDeviceOptions(address, newDeviceCompanion())
options.HardwareUDID = "00008140-CLEAR"
options.AppPath = "/tmp/Sample.app"
options.ClearState = true
options.reinstallApp = func(context.Context) error { probe.record("reinstall"); return nil }
spawn := options.spawnRunner
options.spawnRunner = func(ctx context.Context, runnerAddress string) (*exec.Cmd, error) {
probe.record("runner session")
return spawn(ctx, runnerAddress)
}
d, err := NewDevice(context.Background(), options)
if err != nil {
t.Fatalf("NewDevice: %v", err)
}
defer d.Close()
if err := d.Launch(context.Background(), "", true, nil); err != nil {
t.Fatalf("Launch: %v", err)
}
want := []string{"reinstall", "runner session"}
if got := probe.recorded(); !slices.Equal(got, want) {
t.Fatalf("calls = %v, want %v: devicectl must reinstall once, before the runner's test session attaches", got, want)
}
}
func TestDeviceClearStateWithoutAppPathWarnsOnce(t *testing.T) {
output := &bytes.Buffer{}
d := &Driver{output: output, deviceMode: true}
+110 -24
View File
@@ -53,6 +53,14 @@ var shutdownGrace = 15 * time.Second
// A variable so the timeout test can shrink it.
var launchTimeout = 90 * time.Second
// launchRecoveryTimeout bounds the whole recovery a blown launch bound
// triggers, the session restart and the second attempt together. It keeps the
// launch path inside the three minutes testrun allows it, so what a user sees
// when the app really cannot be launched stays the driver's error rather than
// that backstop firing over the top of it. A variable so the bound test can
// shrink it.
var launchRecoveryTimeout = 60 * time.Second
// longPressHoldMilliseconds is how long LongPress holds the finger down.
const longPressHoldMilliseconds = 600
@@ -65,16 +73,24 @@ type Options struct {
// AppPath is the .app bundle directory. Required for clear-state reinstall;
// when empty, clear state falls back to resetting the data container.
AppPath string
// ClearState resets the app to first-launch state while New runs, before
// any automation session attaches. Clear state is a property of the driver
// rather than of a launch: see Launch.
ClearState bool
// Output receives companion stdout and stderr plus driver warnings.
Output io.Writer
// DoubleTapGapMilliseconds overrides the synthesized double-tap gap.
DoubleTapGapMilliseconds float64
// spawnChild, dialCompanion, and pickAddress are test seams. Production
// leaves them nil and New wires the real extraction, spawn, and dial.
spawnChild func(ctx context.Context, address string) (*exec.Cmd, error)
dialCompanion func(address string) (transport.Companion, error)
pickAddress func() (string, error)
// These are test seams. Production leaves them nil and New wires the real
// extraction, spawn, dial and simctl calls.
spawnChild func(ctx context.Context, address string) (*exec.Cmd, error)
dialCompanion func(address string) (transport.Companion, error)
pickAddress func() (string, error)
spawnRunner func(ctx context.Context, address string) (*exec.Cmd, error)
dialRunner func(address string) (transport.Companion, error)
reinstallApp func(ctx context.Context) error
resetContainer func(ctx context.Context) error
}
// Driver implements driver.DeviceDriver against an iOS simulator companion.
@@ -85,6 +101,12 @@ type Driver struct {
appPath string
output io.Writer
// clearStateAtStartup records that New (or NewDevice) reset the app to
// first-launch state before attaching, which is the only point in a run
// where clearing is safe. Launch refuses a clear-state request the driver
// was not built for rather than reinstalling under a live session.
clearStateAtStartup bool
screenWidth int
screenHeight int
@@ -129,12 +151,13 @@ type Driver struct {
// lifecycle, screenshot) with an in-simulator runner that serves
// collapse-free accessibility snapshots and native unicode typing.
// runnerClient is nil on the legacy-only path.
runnerClient transport.Companion
runnerChild *exec.Cmd
runnerAddress string
spawnRunner func(ctx context.Context, address string) (*exec.Cmd, error)
dialRunner func(address string) (transport.Companion, error)
hybrid bool
runnerClient transport.Companion
runnerChild *exec.Cmd
runnerAddress string
spawnRunner func(ctx context.Context, address string) (*exec.Cmd, error)
dialRunner func(address string) (transport.Companion, error)
pickRunnerAddress func() (string, error)
hybrid bool
// Device-mode fields. On the physical-device path d.companion is the runner
// dialed over a usbmux tunnel, hybrid is false, and runnerClient is nil.
@@ -189,6 +212,9 @@ func New(ctx context.Context, options Options) (*Driver, error) {
if options.UniqueDeviceIdentifier == "" {
return nil, errors.New("ios companion: UniqueDeviceIdentifier is required")
}
if options.ClearState && options.BundleID == "" {
return nil, errors.New("ios companion: clear-state needs BundleID: there is nothing to uninstall or wipe without it")
}
output := options.Output
if output == nil {
output = io.Discard
@@ -202,10 +228,15 @@ func New(ctx context.Context, options Options) (*Driver, error) {
udid: options.UniqueDeviceIdentifier,
bundleID: options.BundleID,
appPath: options.AppPath,
clearStateAtStartup: options.ClearState,
output: output,
doubleTapGapMilliseconds: gap,
spawnChild: options.spawnChild,
dial: options.dialCompanion,
spawnRunner: options.spawnRunner,
dialRunner: options.dialRunner,
reinstallApp: options.reinstallApp,
resetContainer: options.resetContainer,
hybrid: hybridCompanionEnabled(),
}
if driverInstance.spawnChild == nil {
@@ -232,9 +263,14 @@ func New(ctx context.Context, options Options) (*Driver, error) {
return nil, err
}
driverInstance.address = address
driverInstance.pickRunnerAddress = pickAddress
driverInstance.restart = driverInstance.respawnAndRedial
driverInstance.resetContainer = driverInstance.resetDataContainer
driverInstance.reinstallApp = driverInstance.simctlReinstall
if driverInstance.resetContainer == nil {
driverInstance.resetContainer = driverInstance.resetDataContainer
}
if driverInstance.reinstallApp == nil {
driverInstance.reinstallApp = driverInstance.simctlReinstall
}
driverInstance.grantPaste = driverInstance.grantPasteboardAccess
driverInstance.processContext, driverInstance.processCancel = context.WithCancel(ctx)
@@ -245,6 +281,13 @@ func New(ctx context.Context, options Options) (*Driver, error) {
}
driverInstance.deviceLock = lock
if options.ClearState {
if err := driverInstance.clearAppState(ctx); err != nil {
driverInstance.Close()
return nil, err
}
}
if err := driverInstance.bringUp(ctx); err != nil {
driverInstance.Close()
return nil, err
@@ -358,7 +401,7 @@ func (d *Driver) bringUpRunner(ctx context.Context) error {
// A fresh port every bring-up: after a restart the dying session's
// listener may still answer on the old port and would satisfy the wait
// below with a dead server.
address, err := pickLoopbackAddress()
address, err := d.pickRunnerAddress()
if err != nil {
return err
}
@@ -452,6 +495,13 @@ func (d *Driver) Launch(ctx context.Context, bundleID string, clearState bool, e
// loudly rather than silently dropping the request.
return errors.New("ios companion: launch with environment variables is unsupported on this backend")
}
if clearState && !d.clearStateAtStartup {
// Clearing here would uninstall and reinstall the app underneath a live
// automation session, which is what races FrontBoard's registration and
// leaves the session launching a bundle FrontBoard has not registered.
return errors.New("ios companion: clear-state must be requested when the driver is created (Options.ClearState); " +
"this backend clears the app before its automation session exists")
}
// Terminate first so the launch is a clean cold start regardless of the
// app's prior state. A not-running app is not an error here.
@@ -459,12 +509,6 @@ func (d *Driver) Launch(ctx context.Context, bundleID string, clearState bool, e
return companion.Terminate(callCtx, d.bundleID)
})
if clearState {
if err := d.clearAppState(ctx); err != nil {
return err
}
}
// Grant the app pasteboard access before it runs so unicode input (which
// must go through the pasteboard, since HID cannot express it) never trips
// the iOS paste-permission prompt. clearState reinstall resets the grant,
@@ -477,14 +521,55 @@ func (d *Driver) Launch(ctx context.Context, bundleID string, clearState bool, e
}
}
if err := d.lifecycleCall(ctx, func(callCtx context.Context, companion transport.Companion) error {
return companion.Launch(callCtx, d.bundleID, true)
}); err != nil {
if err := d.launchWithSessionRecovery(ctx); err != nil {
return fmt.Errorf("launch %s: %w", d.bundleID, err)
}
return nil
}
// launchWithSessionRecovery runs the launch RPC and, when it blows its own
// bound, replaces the session and launches again.
//
// A launch the simulator refuses, which is what a clear-state reinstall racing
// FrontBoard's registration produces, never comes back as an error: XCTest
// records the refusal as a test failure the runner cannot observe, then holds
// the session's main thread for about four minutes walking a diagnostic chain
// (a 120s accessibility wait, a spindump, an idle wait). So there is no error
// text to key a retry on, only the expired bound, and every later call queues
// behind the same wedge. Only a session that never served the refused launch
// can serve the retry, which is why this restarts rather than calls again.
func (d *Driver) launchWithSessionRecovery(ctx context.Context) error {
launch := func(callCtx context.Context, companion transport.Companion) error {
return companion.Launch(callCtx, d.bundleID, true)
}
err := d.lifecycleCall(ctx, launch)
// A caller whose own budget ran out gets no restart: the bound that expired
// was the caller's to spend, and the second attempt would inherit it dead.
if err == nil || !errors.Is(err, context.DeadlineExceeded) || ctx.Err() != nil || d.restart == nil {
return err
}
fmt.Fprintf(d.output, "launch %s blew its %v bound (%v); restarting the session and launching once more\n",
d.bundleID, launchTimeout, err)
// The restart runs under the driver's own lifetime context for the same
// reason withRecovery's does, while the second attempt stays on the
// caller's. Both end at one deadline, so a launch that already spent
// launchTimeout cannot then wait out a session cold start on top of it.
recoveryDeadline := time.Now().Add(launchRecoveryTimeout)
restartCtx := d.processContext
if restartCtx == nil {
restartCtx = ctx
}
restartCtx, cancelRestart := context.WithDeadline(restartCtx, recoveryDeadline)
defer cancelRestart()
if restartErr := d.restart(restartCtx); restartErr != nil {
return fmt.Errorf("session restart failed: %w (original: %v)", restartErr, err)
}
relaunchCtx, cancelRelaunch := context.WithDeadline(ctx, recoveryDeadline)
defer cancelRelaunch()
return d.lifecycleCall(relaunchCtx, launch)
}
// lifecycleCall runs an app lifecycle RPC against lifecycleCompanion under a
// launchTimeout-bounded context, with the usual one-restart recovery. The
// companion is resolved inside the retry so a restart's replacement client
@@ -511,7 +596,8 @@ func (d *Driver) lifecycleCompanion() transport.Companion {
// clearAppState resets the app to a first-launch state. With an app path it
// uninstalls and reinstalls; without one it falls back to wiping the app's data
// container and warns once that a full reinstall needs the app path.
// container and warns once that a full reinstall needs the app path. Called
// only from construction, before any automation session is attached to the app.
func (d *Driver) clearAppState(ctx context.Context) error {
if d.appPath != "" {
if err := d.reinstallApp(ctx); err != nil {
+301 -29
View File
@@ -12,6 +12,7 @@ import (
"os"
"os/exec"
"path/filepath"
"slices"
"strings"
"sync"
"testing"
@@ -182,47 +183,149 @@ func TestLaunchContinuesWhenGrantFails(t *testing.T) {
}
}
func TestLaunchClearStateReinstallsWithAppPath(t *testing.T) {
// clearStateProbe records, in order, the calls a run makes to reset the app and
// to bring the runner's automation session up. A reinstall recorded after the
// session is the ordering that races FrontBoard.
type clearStateProbe struct {
mutex sync.Mutex
events []string
}
func (p *clearStateProbe) record(event string) {
p.mutex.Lock()
defer p.mutex.Unlock()
p.events = append(p.events, event)
}
func (p *clearStateProbe) recorded() []string {
p.mutex.Lock()
defer p.mutex.Unlock()
out := make([]string, len(p.events))
copy(out, p.events)
return out
}
// clearStateOptions wires every seam a hybrid bring-up needs, so New runs its
// real sequence against fakes: no simulator, no simctl, no XCTest session.
func clearStateOptions(t *testing.T, probe *clearStateProbe, udid string, clearState bool) Options {
t.Helper()
t.Setenv("SANDERLING_SIMULATOR_COMPANION", "")
address := startLoopbackListener(t)
return Options{
UniqueDeviceIdentifier: udid,
BundleID: "com.example.app",
ClearState: clearState,
Output: &bytes.Buffer{},
pickAddress: func() (string, error) { return address, nil },
spawnChild: func(context.Context, string) (*exec.Cmd, error) { return &exec.Cmd{}, nil },
dialCompanion: func(string) (transport.Companion, error) {
return &fakeCompanion{accessibilityJSON: "[]"}, nil
},
spawnRunner: func(context.Context, string) (*exec.Cmd, error) {
probe.record("runner session")
return &exec.Cmd{}, nil
},
dialRunner: func(string) (transport.Companion, error) {
return &fakeCompanion{accessibilityJSON: "[]"}, nil
},
reinstallApp: func(context.Context) error { probe.record("reinstall"); return nil },
resetContainer: func(context.Context) error { probe.record("reset container"); return nil },
}
}
func TestClearStateReinstallsOnceBeforeTheRunnerSession(t *testing.T) {
probe := &clearStateProbe{}
options := clearStateOptions(t, probe, "CLEAR-REINSTALL-UDID", true)
options.AppPath = "/tmp/Sample.app"
d, err := New(context.Background(), options)
if err != nil {
t.Fatalf("New: %v", err)
}
defer d.Close()
if err := d.Launch(context.Background(), "", true, nil); err != nil {
t.Fatalf("Launch: %v", err)
}
want := []string{"reinstall", "runner session"}
if got := probe.recorded(); !slices.Equal(got, want) {
t.Fatalf("calls = %v, want %v: the reinstall must run once, before the automation session attaches", got, want)
}
}
func TestClearStateWithoutAppPathWipesContainerBeforeTheRunnerSession(t *testing.T) {
probe := &clearStateProbe{}
output := &bytes.Buffer{}
options := clearStateOptions(t, probe, "CLEAR-CONTAINER-UDID", true)
options.Output = output
d, err := New(context.Background(), options)
if err != nil {
t.Fatalf("New: %v", err)
}
defer d.Close()
if err := d.Launch(context.Background(), "", true, nil); err != nil {
t.Fatalf("Launch: %v", err)
}
want := []string{"reset container", "runner session"}
if got := probe.recorded(); !slices.Equal(got, want) {
t.Fatalf("calls = %v, want %v: the fallback must wipe the container once, before the session, and never reinstall", got, want)
}
if warnings := strings.Count(output.String(), "resetting the data container only"); warnings != 1 {
t.Fatalf("warning emitted %d times, want once", warnings)
}
}
func TestWithoutClearStateTheAppIsLeftAlone(t *testing.T) {
probe := &clearStateProbe{}
options := clearStateOptions(t, probe, "NO-CLEAR-UDID", false)
options.AppPath = "/tmp/Sample.app"
d, err := New(context.Background(), options)
if err != nil {
t.Fatalf("New: %v", err)
}
defer d.Close()
if err := d.Launch(context.Background(), "", false, nil); err != nil {
t.Fatalf("Launch: %v", err)
}
want := []string{"runner session"}
if got := probe.recorded(); !slices.Equal(got, want) {
t.Fatalf("calls = %v, want %v: a run that did not ask for clear state must not touch the install", got, want)
}
}
func TestLaunchRefusesClearStateTheDriverWasNotBuiltFor(t *testing.T) {
companion := &fakeCompanion{accessibilityJSON: "[]"}
d := newTestDriver(companion)
d.appPath = "/tmp/Sample.app"
reinstalls := 0
d.reinstallApp = func(context.Context) error { reinstalls++; return nil }
if err := d.Launch(context.Background(), "", true, nil); err != nil {
t.Fatalf("Launch: %v", err)
err := d.Launch(context.Background(), "", true, nil)
if err == nil || !strings.Contains(err.Error(), "clear-state") {
t.Fatalf("Launch err = %v, want a refusal naming clear-state", err)
}
if reinstalls != 1 {
t.Fatalf("clear-state with app path must reinstall exactly once; got %d", reinstalls)
if reinstalls != 0 {
t.Fatalf("reinstalls = %d, want 0: a live session must never have the app reinstalled under it", reinstalls)
}
if indexOf(companion.calls, "launch") < indexOf(companion.calls, "terminate") {
t.Fatalf("launch must still follow terminate; got %v", companion.calls)
if indexOf(companion.recorded(), "launch") >= 0 {
t.Fatalf("a refused launch must not reach the companion; got %v", companion.recorded())
}
}
func TestLaunchClearStateFallbackWarnsOnce(t *testing.T) {
companion := &fakeCompanion{accessibilityJSON: "[]"}
output := &bytes.Buffer{}
d := newTestDriver(companion)
d.output = output
resets := 0
d.resetContainer = func(context.Context) error { resets++; return nil }
func TestNewRejectsClearStateWithoutBundleID(t *testing.T) {
probe := &clearStateProbe{}
options := clearStateOptions(t, probe, "NO-BUNDLE-UDID", true)
options.BundleID = ""
for i := 0; i < 2; i++ {
if err := d.Launch(context.Background(), "", true, nil); err != nil {
t.Fatalf("Launch %d: %v", i, err)
}
if _, err := New(context.Background(), options); err == nil || !strings.Contains(err.Error(), "BundleID") {
t.Fatalf("New err = %v, want a refusal naming BundleID", err)
}
if resets != 2 {
t.Fatalf("resetContainer called %d times, want 2", resets)
}
warnings := strings.Count(output.String(), "resetting the data container only")
if warnings != 1 {
t.Fatalf("warning emitted %d times, want once", warnings)
}
for _, call := range companion.calls {
if call == "install" || call == "uninstall" {
t.Fatalf("fallback path must not install/uninstall; got %v", companion.calls)
}
if got := probe.recorded(); len(got) != 0 {
t.Fatalf("calls = %v, want none: clearing an unnamed bundle would reinstall without resetting anything", got)
}
}
@@ -951,6 +1054,175 @@ func TestLaunchLeavesATighterCallerDeadlineAlone(t *testing.T) {
}
}
// wedgedUntilRestartCompanion models the session a refused launch leaves
// behind: the refusal is never reported, and no later launch is answered until
// the session itself is replaced.
type wedgedUntilRestartCompanion struct {
fakeCompanion
mutex sync.Mutex
replaced bool
attempted int
}
func (w *wedgedUntilRestartCompanion) replaceSession() {
w.mutex.Lock()
defer w.mutex.Unlock()
w.replaced = true
}
func (w *wedgedUntilRestartCompanion) launchAttempts() int {
w.mutex.Lock()
defer w.mutex.Unlock()
return w.attempted
}
func (w *wedgedUntilRestartCompanion) Launch(ctx context.Context, _ string, _ bool) error {
w.mutex.Lock()
w.attempted++
replaced := w.replaced
w.mutex.Unlock()
if replaced {
return nil
}
<-ctx.Done()
return ctx.Err()
}
// TestLaunchReplacesTheSessionAfterALaunchBlowsItsBound covers the FrontBoard
// race: a clear-state reinstall the simulator has not finished registering
// makes the session refuse the launch, and XCTest answers that refusal with
// minutes of diagnostics instead of an error, so the bound expires and every
// later call queues behind the same wedge. Calling launch again on that session
// cannot work; the run only recovers if the session is replaced first.
func TestLaunchReplacesTheSessionAfterALaunchBlowsItsBound(t *testing.T) {
previous := launchTimeout
launchTimeout = 100 * time.Millisecond
defer func() { launchTimeout = previous }()
companion := &wedgedUntilRestartCompanion{}
output := &bytes.Buffer{}
d := newTestDriver(companion)
d.output = output
restarts := 0
d.restart = func(context.Context) error {
restarts++
companion.replaceSession()
return nil
}
if err := d.Launch(context.Background(), "", false, nil); err != nil {
t.Fatalf("Launch: %v", err)
}
if restarts != 1 {
t.Fatalf("session restarts = %d, want exactly 1", restarts)
}
if attempts := companion.launchAttempts(); attempts != 2 {
t.Fatalf("launch attempts = %d, want 2: one that wedged and one on the replaced session", attempts)
}
if !strings.Contains(output.String(), "restarting the session") {
t.Fatalf("the recovery was silent, so a run that needed it never says so; output was %q", output.String())
}
}
// TestLaunchBoundsTheSessionRestartItTriggers keeps the recovery inside a
// budget of its own. The restart deliberately runs on the driver's lifetime
// context rather than the caller's, so without a deadline a session that never
// comes back would hang the launch path exactly the way #73 stopped it hanging.
func TestLaunchBoundsTheSessionRestartItTriggers(t *testing.T) {
previousLaunch, previousRecovery := launchTimeout, launchRecoveryTimeout
launchTimeout = 100 * time.Millisecond
launchRecoveryTimeout = 200 * time.Millisecond
defer func() { launchTimeout, launchRecoveryTimeout = previousLaunch, previousRecovery }()
d := newTestDriver(&wedgedUntilRestartCompanion{})
d.restart = func(restartCtx context.Context) error {
<-restartCtx.Done()
return restartCtx.Err()
}
done := make(chan error, 1)
go func() { done <- d.Launch(context.Background(), "", false, nil) }()
select {
case err := <-done:
if err == nil || !strings.Contains(err.Error(), "session restart failed") {
t.Fatalf("err = %v, want the failed restart named", err)
}
case <-time.After(10 * time.Second):
t.Fatal("Launch never returned: a session that never comes back hangs the launch path")
}
}
// TestLaunchKeepsTheSessionWhenTheCallersOwnDeadlineExpires holds the recovery
// to the driver's own bound. Spending a session restart on a caller that has
// already run out of budget cannot produce a launch, only a later failure.
func TestLaunchKeepsTheSessionWhenTheCallersOwnDeadlineExpires(t *testing.T) {
previous := launchTimeout
launchTimeout = 30 * time.Second
defer func() { launchTimeout = previous }()
companion := &wedgedUntilRestartCompanion{}
d := newTestDriver(companion)
restarts := 0
d.restart = func(context.Context) error {
restarts++
companion.replaceSession()
return nil
}
ctx, cancel := context.WithTimeout(context.Background(), 100*time.Millisecond)
defer cancel()
if err := d.Launch(ctx, "", false, nil); !errors.Is(err, context.DeadlineExceeded) {
t.Fatalf("err = %v, want a deadline-exceeded error", err)
}
if restarts != 0 {
t.Fatalf("session restarts = %d, want 0", restarts)
}
}
// refusedLaunchCompanion answers a launch the way the runner does once it
// checks the app's state after activating it: promptly, naming the app and the
// state it reached, over a session that is still serving.
type refusedLaunchCompanion struct {
fakeCompanion
attempts int
}
func (r *refusedLaunchCompanion) Launch(context.Context, string, bool) error {
r.attempts++
return errors.New(`runner launch: failed("com.example.app is not running after launch")`)
}
// TestLaunchKeepsTheSessionWhenTheRunnerNamesTheRefusal separates a launch that
// answers from a launch that never does. The session restart is the only
// recovery from a wedged session, and it costs a cold start; a runner that
// reports the app's state has already said what a fresh session would say, so
// restarting to hear it again only delays the error and hides the app under it.
func TestLaunchKeepsTheSessionWhenTheRunnerNamesTheRefusal(t *testing.T) {
companion := &refusedLaunchCompanion{}
output := &bytes.Buffer{}
d := newTestDriver(companion)
d.output = output
restarts := 0
d.restart = func(context.Context) error {
restarts++
return nil
}
err := d.Launch(context.Background(), "", false, nil)
if err == nil || !strings.Contains(err.Error(), "com.example.app is not running after launch") {
t.Fatalf("err = %v, want the runner's refusal reaching the caller intact", err)
}
if restarts != 0 {
t.Fatalf("session restarts = %d, want 0: a refusal the runner reported is not a wedged session", restarts)
}
if companion.attempts != 1 {
t.Fatalf("launch attempts = %d, want 1: relaunching an app the runner just refused cannot launch it", companion.attempts)
}
if strings.Contains(output.String(), "restarting the session") {
t.Fatalf("the driver announced a recovery it must not spend here; output was %q", output.String())
}
}
// newLockTestOptions builds New options that dial a seamed companion, so the
// device-lock tests exercise New without spawning anything.
func newLockTestOptions(t *testing.T, udid string) Options {
+11 -3
View File
@@ -11,7 +11,8 @@
// descPrefix:<prefix> - starts-with on content-desc / accessibilityText
//
// Object selectors (multi-attribute AND, element-scoped or global):
// { attr: value, ... } - all key/value pairs must match; substring / boolean semantics
// { attr: value, ... } - all key/value pairs must match, each key resolved by
// the same rule its string form above uses
//
// Path queries (global scan only, string form):
// <sel> > <sel> > ... - each segment matched within subtree of previous match
@@ -156,10 +157,17 @@ func matchAttr(element *Element, attr, value string) bool {
return false
}
// matchSelector returns true when all filters in sel match the element (AND semantics).
// matchSelector returns true when all filters in sel match the element (AND
// semantics). Each filter goes through match, the same rule the string form
// resolves a "kind:value" segment by, so {id: "Submit"} and "id:Submit" can
// never resolve to different elements. Applying matchAttr directly here made
// the object form skip the kind arms entirely: id, desc and descPrefix name no
// attribute any producer writes, so those keys matched NOTHING through an
// object selector while the string form matched, and every property over the
// missing element passed vacuously.
func matchSelector(element *Element, sel Selector) bool {
for _, f := range sel.Filters {
if !matchAttr(element, f.Attr, f.Value) {
if !match(element, f.Attr, f.Value) {
return false
}
}
+80
View File
@@ -1035,3 +1035,83 @@ func TestTreeTransitional(t *testing.T) {
t.Error("nil tree must not be flagged as transitional")
}
}
// selectorFormsDump carries one node per id shape a real dump produces, plus
// nodes carrying a description in the ", " form the desc rule knows about and a
// text the text rule matches on a substring.
const selectorFormsDump = `{
"attributes": {"resource-id": "root", "bounds": "[0,0,400,800]"},
"children": [
{"attributes": {"resource-id": "BareThing", "bounds": "[0,0,100,50]"}, "children": []},
{"attributes": {"resource-id": "com.example.app:id/AndroidThing", "bounds": "[0,50,100,100]"},
"children": []},
{"attributes": {"accessibilityIdentifier": "IosThing", "bounds": "[0,100,100,150]"},
"children": []},
{"attributes": {"resource-id": "Described", "content-desc": "Save, button", "bounds": "[0,150,100,200]"},
"children": []},
{"attributes": {"resource-id": "Labelled", "text": "Total balance", "bounds": "[0,200,100,250]"},
"children": []}
]
}`
// TestSelectorFormsResolveTheSameElement holds the two selector forms a spec can
// write to ONE rule per key. A spec reaches these through state.ax.find: a
// string goes to FindNode, an object to FindBySelector, and the two ran
// different matchers. `id` has a kind arm that knows an Android resource id is
// package-qualified (com.example.app:id/Thing) and that a spec names the bare
// tail; the object form had no such arm and looked for a literal `id` attribute
// no producer writes, so {id: "Thing"} silently matched nothing on every
// platform while "id:Thing" matched. `desc` and `descPrefix` had the same
// split. A selector that resolves nothing makes every property over it
// vacuously true, which is the failure that reports a green run while checking
// nothing.
func TestSelectorFormsResolveTheSameElement(t *testing.T) {
tree, err := Parse(selectorFormsDump)
if err != nil {
t.Fatal(err)
}
for _, test := range []struct {
key string
value string
want string
}{
{"id", "BareThing", "BareThing"},
// A spec names the tail; an Android dump carries the package prefix.
{"id", "AndroidThing", "com.example.app:id/AndroidThing"},
{"id", "com.example.app:id/AndroidThing", "com.example.app:id/AndroidThing"},
{"id", "IosThing", "IosThing"},
{"desc", "Save, button", "Described"},
// The ", " form an accessibility label takes when a role is appended.
{"desc", "Save", "Described"},
{"descPrefix", "Sav", "Described"},
{"text", "Total", "Labelled"},
{"resource-id", "BareThing", "BareThing"},
{"testTag", "IosThing", "IosThing"},
} {
t.Run(test.key+":"+test.value, func(t *testing.T) {
stringForm := test.key + ":" + test.value
fromString := tree.FindNode(stringForm)
if fromString == nil {
t.Fatalf("the string form %q resolved nothing", stringForm)
}
if fromString.ResourceID != test.want {
t.Fatalf("the string form resolved %q, want %q", fromString.ResourceID, test.want)
}
fromObject := tree.Root.FindBySelector(
Selector{Filters: []AttrFilter{{Attr: test.key, Value: test.value}}},
)
if fromObject == nil {
t.Fatalf(
"the object form {%s: %q} resolved nothing while %q resolved %q",
test.key, test.value, stringForm, fromString.ResourceID,
)
}
if fromObject != fromString {
t.Errorf(
"one selector, two answers: {%s: %q} resolved %q and %q resolved %q",
test.key, test.value, fromObject.ResourceID, stringForm, fromString.ResourceID,
)
}
})
}
}
+297
View File
@@ -0,0 +1,297 @@
package runner
import (
"bytes"
"context"
"encoding/json"
"fmt"
"os"
"path/filepath"
"strings"
"sync/atomic"
"testing"
"time"
"github.com/priyanshujain/sanderling/internal/driver"
mockdriver "github.com/priyanshujain/sanderling/internal/driver/mock"
)
// homeWithRows is one settled route whose list holds rows. A row arriving
// between two reads is what a Compose lazy list mounting over several frames
// looks like from the runner's side.
func homeWithRows(rows int) string {
var children strings.Builder
for row := range rows {
fmt.Fprintf(&children,
`,{"attributes":{"resource-id":"TxnRow%d","class":"android.view.View"},"children":[]}`, row)
}
return fmt.Sprintf(
`{"attributes":{"resource-id":"HomeScreen","class":"android.view.View"},"children":[
{"attributes":{"resource-id":"TxnList","class":"android.view.View"},"children":[]}%s
]}`, children.String())
}
// composesLateDriver answers the paired Snapshot with the frame the step
// records and the hierarchy read that follows with a tree that has grown a row,
// for the first composingReads reads of the run. After that both reads describe
// the same screen.
type composesLateDriver struct {
*mockdriver.Driver
composingReads int64
reads atomic.Int64
}
func (d *composesLateDriver) Snapshot(context.Context) (string, driver.Image, error) {
return homeWithRows(1), driver.Image{PNG: []byte("png"), Width: 1, Height: 1}, nil
}
func (d *composesLateDriver) Hierarchy(context.Context) (string, error) {
if d.reads.Add(1) <= d.composingReads {
return homeWithRows(2), nil
}
return homeWithRows(1), nil
}
// A route can settle before its content composes, so a tree read the moment the
// route arrives can describe a screen that is still filling in. Verifying that
// step compares a half-composed frame against a settled one and convicts an app
// that did nothing wrong. Two reads a read apart see it happening, and the step
// they disagree on is one the verifier must never be handed.
//
// The always-false property is the witness: it fires on the first step the
// verifier evaluates, so the step index of its violation says exactly which
// step reached the verifier.
func TestRunner_AStepWhoseTreeChangedBetweenReadsIsNotVerified(t *testing.T) {
run := func(t *testing.T, composingReads int64) (Summary, string) {
t.Helper()
state := newHarnessWithSpec(t, violationSpec)
device := &composesLateDriver{Driver: state.mock, composingReads: composingReads}
ctx, cancel := context.WithTimeout(context.Background(), 10*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: time.Hour,
IdleTimeout: 20 * time.Millisecond,
MaxSteps: 3,
Driver: device,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if summary.Steps != 3 {
t.Fatalf("steps = %d, want 3", summary.Steps)
}
return summary, state.writer.Directory()
}
t.Run("the step it changed on is skipped, the next one is judged", func(t *testing.T) {
summary, directory := run(t, 1)
if len(summary.Violations) != 1 {
t.Fatalf("violations = %v, want exactly one", summary.Violations)
}
violation := summary.Violations[0]
if violation.Properties[0] != "balanceNonNegative" {
t.Fatalf("violated %v, want balanceNonNegative", violation.Properties)
}
if violation.StepIndex != 2 {
t.Errorf("the property first judged step %d, want 2; the verifier was handed "+
"a screen that grew a row while the runner was reading it",
violation.StepIndex)
}
if summary.SkippedVerification != 1 {
t.Errorf("the run reports %d step(s) judged by nothing, want 1",
summary.SkippedVerification)
}
// Skipped is not lost: the step is still recorded, screenshot and all,
// so the run can be replayed over the frame nothing judged.
steps := traceSteps(t, directory)
if len(steps) != 3 {
t.Fatalf("trace holds %d step(s), want 3", len(steps))
}
if len(steps[0].Violations) != 0 {
t.Errorf("step 1 recorded violations %v; it was never verified", steps[0].Violations)
}
screenshot := filepath.Join(directory, "screenshots", "step-00001.png")
if _, err := os.Stat(screenshot); err != nil {
t.Errorf("expected the skipped step's screenshot at %s: %v", screenshot, err)
}
})
// The control. Two reads that agree must verify as they always did,
// otherwise the case above is just a runner that verifies nothing.
t.Run("two reads that agree verify the step", func(t *testing.T) {
summary, _ := run(t, 0)
if len(summary.Violations) != 1 {
t.Fatalf("violations = %v, want exactly one", summary.Violations)
}
if got := summary.Violations[0].StepIndex; got != 1 {
t.Errorf("the property first judged step %d, want 1; a settled screen must be "+
"verified on the step it was read", got)
}
})
}
// submitsOnTapDriver commits a transaction on every tap, shows the running
// total in the tree, and grows a row under the hierarchy read that follows the
// paired Snapshot: on one chosen step, or on every one of them.
type submitsOnTapDriver struct {
*mockdriver.Driver
composingRead int64
everyRead bool
reads atomic.Int64
committed atomic.Int64
}
func (d *submitsOnTapDriver) Tap(context.Context, int, int) error { return d.commit() }
func (d *submitsOnTapDriver) TapSelector(context.Context, string) error { return d.commit() }
func (d *submitsOnTapDriver) commit() error {
d.committed.Add(1)
return nil
}
func (d *submitsOnTapDriver) Snapshot(context.Context) (string, driver.Image, error) {
return fmt.Sprintf(homeWithTxnCount, d.committed.Load()), driver.Image{}, nil
}
func (d *submitsOnTapDriver) Hierarchy(context.Context) (string, error) {
if read := d.reads.Add(1); d.everyRead || read == d.composingRead {
return fmt.Sprintf(homeWithTxnCountComposing, d.committed.Load()), nil
}
return fmt.Sprintf(homeWithTxnCount, d.committed.Load()), nil
}
// The same tree with one more row in it, which is what the reread sees while
// the screen is still filling in.
const homeWithTxnCountComposing = `{"attributes":{"resource-id":"HomeScreen"},"children":[
{"attributes":{"resource-id":"TxnCount","text":"%d"},"children":[]},
{"attributes":{"resource-id":"TxnSubmit","bounds":"[40,80,240,160]"},"children":[],"clickable":true,"enabled":true},
{"attributes":{"resource-id":"TxnRowLate"},"children":[]}
]}`
// Skipping a step is only free if nothing the spec needs goes missing with it.
// The action a step applies is reported to the spec on the NEXT step the
// verifier accepts, so a skipped step in between swallows the action before it:
// the transaction it committed still turns up in the next reading, and
// submitCommitsOneTransactionPerAction sees a rise nothing in its window
// accounts for. That is the conviction #77 and #78 are about, arriving through
// the skip rather than through the runner's report.
//
// So a frame the verifier will not look at is not one to act on either, which
// is also what #75 asked for: the fuzzer must not tap into a screen that is
// still filling in.
func TestRunner_ASkippedStepDoesNotSwallowTheActionBeforeIt(t *testing.T) {
spec := specWithFolioPredicates(t)
run := func(t *testing.T, composingRead int64) (Summary, int64) {
t.Helper()
state := newHarnessWithSpec(t, spec)
device := &submitsOnTapDriver{Driver: state.mock, composingRead: composingRead}
ctx, cancel := context.WithTimeout(context.Background(), 30*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: time.Hour,
IdleTimeout: 20 * time.Millisecond,
MaxSteps: 3,
Driver: device,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if summary.Steps != 3 {
t.Fatalf("steps = %d, want 3", summary.Steps)
}
return summary, device.committed.Load()
}
t.Run("a submit is not lost to the step that follows it", func(t *testing.T) {
summary, committed := run(t, 2)
if summary.SkippedVerification != 1 {
t.Fatalf("the run skipped %d step(s), want 1; the reread never fired, so this "+
"proves nothing", summary.SkippedVerification)
}
if committed == 0 {
t.Fatal("the device committed nothing; a runner that never acts passes this " +
"test without meaning anything")
}
if len(summary.Violations) != 0 {
t.Errorf("the counting property convicted a healthy app: %v\n"+
"one transaction per submit rose, and a submit went unreported because "+
"the step after it was skipped", summary.Violations)
}
})
// The control: with nothing composing, every step is verified and the same
// app is judged clean, so the case above is not just a runner that stopped
// judging.
t.Run("every step verified, same app, no violation", func(t *testing.T) {
summary, committed := run(t, 0)
if summary.SkippedVerification != 0 {
t.Fatalf("the run skipped %d step(s), want 0", summary.SkippedVerification)
}
if committed != 3 {
t.Fatalf("the device committed %d transaction(s), want 3", committed)
}
if len(summary.Violations) != 0 {
t.Errorf("the counting property convicted a healthy app: %v", summary.Violations)
}
})
}
// Holding an action back is bounded. A screen that changes shape under every
// pair of reads (a live list, a spinner mounting and unmounting) would
// otherwise take the whole run: nothing verified, nothing tapped, and a green
// summary at the end of it.
func TestRunner_AScreenThatNeverSettlesDoesNotStallTheRun(t *testing.T) {
state := newHarnessWithSpec(t, specWithFolioPredicates(t))
device := &submitsOnTapDriver{Driver: state.mock, everyRead: true}
ctx, cancel := context.WithTimeout(context.Background(), 30*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: time.Hour,
IdleTimeout: 20 * time.Millisecond,
MaxSteps: 5,
Driver: device,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if summary.SkippedVerification != 5 {
t.Fatalf("the run verified some step of a screen that never settled: skipped %d of 5",
summary.SkippedVerification)
}
if device.committed.Load() == 0 {
t.Error("the fuzzer never acted across 5 steps; a screen that keeps moving must " +
"cost the run a step or two, not all of them")
}
}
type traceLine struct {
Step int `json:"step"`
Violations []string `json:"violations"`
}
func traceSteps(t *testing.T, directory string) []traceLine {
t.Helper()
body, err := os.ReadFile(filepath.Join(directory, "trace.jsonl"))
if err != nil {
t.Fatal(err)
}
var steps []traceLine
for _, raw := range bytes.Split(bytes.TrimSpace(body), []byte("\n")) {
var line traceLine
if err := json.Unmarshal(raw, &line); err != nil {
t.Fatalf("decode trace line: %v", err)
}
steps = append(steps, line)
}
return steps
}
@@ -0,0 +1,287 @@
package runner
import (
"context"
"fmt"
"path/filepath"
"sync/atomic"
"testing"
"time"
"github.com/priyanshujain/sanderling/internal/driver"
mockdriver "github.com/priyanshujain/sanderling/internal/driver/mock"
)
const guardedBundleID = "app.folio"
// committingDevice is a device whose submit taps commit transactions the next
// hierarchy read shows, and which can say how many it has committed so a test
// can prove the taps landed before reading anything into a verdict.
type committingDevice interface {
driver.DeviceDriver
commits() int64
}
// leavesForegroundAfterSubmitDriver is the condition the app-scope guard exists
// for: the submit tap lands and commits, and the app is no longer the
// foreground app by the time the next step looks. Folio's transactions are in
// sqlite, so the commit survives the relaunch and the next reading shows it.
type leavesForegroundAfterSubmitDriver struct {
*mockdriver.Driver
commitsPerTap int64
committed atomic.Int64
away atomic.Bool
}
func (d *leavesForegroundAfterSubmitDriver) Tap(context.Context, int, int) error {
return d.commitThenLeave()
}
func (d *leavesForegroundAfterSubmitDriver) TapSelector(context.Context, string) error {
return d.commitThenLeave()
}
func (d *leavesForegroundAfterSubmitDriver) commitThenLeave() error {
d.committed.Add(d.commitsPerTap)
d.away.Store(true)
return nil
}
func (d *leavesForegroundAfterSubmitDriver) commits() int64 { return d.committed.Load() }
func (d *leavesForegroundAfterSubmitDriver) Launch(
ctx context.Context,
bundleID string,
clearState bool,
env map[string]string,
) error {
d.away.Store(false)
return d.Driver.Launch(ctx, bundleID, clearState, env)
}
func (d *leavesForegroundAfterSubmitDriver) ForegroundApp(context.Context) (string, error) {
if d.away.Load() {
return "com.android.launcher", nil
}
return guardedBundleID, nil
}
func (d *leavesForegroundAfterSubmitDriver) FocusedWindowApp(ctx context.Context) (string, error) {
return d.ForegroundApp(ctx)
}
func (d *leavesForegroundAfterSubmitDriver) Snapshot(context.Context) (string, driver.Image, error) {
return fmt.Sprintf(homeWithTxnCount, d.committed.Load()), driver.Image{}, nil
}
// No device answers Snapshot and Hierarchy off different trees, and the runner
// reads both per step, so this one answers them off the same commit count.
func (d *leavesForegroundAfterSubmitDriver) Hierarchy(context.Context) (string, error) {
return fmt.Sprintf(homeWithTxnCount, d.committed.Load()), nil
}
// obscuredAfterSubmitDriver is the other half of the same guard: the app stays
// the resumed activity, but a system window (the notification shade) owns the
// focused window when the next step looks, and the guard presses back to
// collapse it.
type obscuredAfterSubmitDriver struct {
*mockdriver.Driver
commitsPerTap int64
committed atomic.Int64
obscured atomic.Bool
}
func (d *obscuredAfterSubmitDriver) Tap(context.Context, int, int) error {
return d.commitThenObscure()
}
func (d *obscuredAfterSubmitDriver) TapSelector(context.Context, string) error {
return d.commitThenObscure()
}
func (d *obscuredAfterSubmitDriver) commitThenObscure() error {
d.committed.Add(d.commitsPerTap)
d.obscured.Store(true)
return nil
}
func (d *obscuredAfterSubmitDriver) commits() int64 { return d.committed.Load() }
func (d *obscuredAfterSubmitDriver) PressKey(ctx context.Context, key string) error {
if key == "back" {
d.obscured.Store(false)
}
return d.Driver.PressKey(ctx, key)
}
func (d *obscuredAfterSubmitDriver) ForegroundApp(context.Context) (string, error) {
return guardedBundleID, nil
}
func (d *obscuredAfterSubmitDriver) FocusedWindowApp(context.Context) (string, error) {
if d.obscured.Load() {
return "com.android.systemui", nil
}
return guardedBundleID, nil
}
func (d *obscuredAfterSubmitDriver) Snapshot(context.Context) (string, driver.Image, error) {
return fmt.Sprintf(homeWithTxnCount, d.committed.Load()), driver.Image{}, nil
}
func (d *obscuredAfterSubmitDriver) Hierarchy(context.Context) (string, error) {
return fmt.Sprintf(homeWithTxnCount, d.committed.Load()), nil
}
// runTwoSubmitSteps drives two steps of the shipped folio counting property
// against a device that commits on every tap, and hands back what the property
// decided. Both steps have to run: the first arms the comparison, the second is
// where the guard fires and the pair is judged.
func runTwoSubmitSteps(
t *testing.T,
state *harness,
device committingDevice,
commitsPerTap int64,
) []ViolationRecord {
t.Helper()
ctx, cancel := context.WithTimeout(context.Background(), 30*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: time.Hour,
IdleTimeout: 20 * time.Millisecond,
MaxSteps: 2,
BundleID: guardedBundleID,
Driver: device,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if summary.Steps != 2 {
t.Fatalf("steps = %d, want 2; the run never reached the step that judges the pair",
summary.Steps)
}
if got := device.commits(); got != commitsPerTap*2 {
t.Fatalf("the device committed %d transaction(s), want %d; the taps never reached it",
got, commitsPerTap*2)
}
return summary.Violations
}
func countMockActions(state *harness, kind mockdriver.ActionKind, key string) int {
count := 0
for _, action := range state.mock.Actions() {
if action.Kind != kind {
continue
}
if key != "" && action.Key != key {
continue
}
count++
}
return count
}
func specWithFolioPredicates(t *testing.T) string {
t.Helper()
predicates, err := filepath.Abs("../../examples/folio/sanderling/predicates.ts")
if err != nil {
t.Fatal(err)
}
return fmt.Sprintf(submitCountingSpecTemplate, predicates)
}
// A relaunch is not proof that nothing ran before it. The submit was dispatched
// and confirmed; what the relaunch changed is that the app restarted between
// the two readings the property compares. Reporting "no action" for it hands
// submitCommitsOneTransactionPerAction a transaction rise of one against a
// window of zero submits, which is the conviction #77 fixed for the apply-error
// path, manufactured here out of the scope guard instead.
func TestRunner_ARelaunchDoesNotConvictTheSubmitCountingProperty(t *testing.T) {
spec := specWithFolioPredicates(t)
run := func(t *testing.T, commitsPerTap int64) []ViolationRecord {
t.Helper()
state := newHarnessWithSpec(t, spec)
device := &leavesForegroundAfterSubmitDriver{
Driver: state.mock,
commitsPerTap: commitsPerTap,
}
violations := runTwoSubmitSteps(t, state, device, commitsPerTap)
if countMockActions(state, mockdriver.ActionLaunch, "") == 0 {
t.Fatal("the app was never relaunched, so the guard this test is about never ran")
}
return violations
}
t.Run("one transaction per tap is not a double submit", func(t *testing.T) {
if violations := run(t, 1); len(violations) != 0 {
t.Errorf("the counting property convicted a healthy app: %v\n"+
"one transaction rose against a submit the runner confirmed, and the "+
"spec was told no action happened because the app was relaunched",
violations)
}
})
// The control. Without it a green above proves nothing: a property that
// never sees a comparable pair is silently vacuous and reports the same
// empty violation list.
t.Run("two transactions per tap still convicts", func(t *testing.T) {
violations := run(t, 2)
if len(violations) == 0 {
t.Fatal("the counting property missed a double submit; the harness never " +
"put the property in a position to fire, so the case above proves nothing")
}
if violations[0].Properties[0] != "submitCommitsOneTransactionPerAction" {
t.Errorf("violated %v, want submitCommitsOneTransactionPerAction", violations[0].Properties)
}
})
}
// The same hole through the guard's other branch. A system window holding the
// focus says nothing about whether the tap under it ran: it was dispatched, and
// what nobody can say afterwards is whether the app received it. That is the
// unknown `applied` already carries, and it counts toward the submits a window
// could hold. Reporting no action instead convicts the app of a transaction
// with no cause.
func TestRunner_AnOverlayDoesNotConvictTheSubmitCountingProperty(t *testing.T) {
spec := specWithFolioPredicates(t)
run := func(t *testing.T, commitsPerTap int64) []ViolationRecord {
t.Helper()
state := newHarnessWithSpec(t, spec)
device := &obscuredAfterSubmitDriver{
Driver: state.mock,
commitsPerTap: commitsPerTap,
}
violations := runTwoSubmitSteps(t, state, device, commitsPerTap)
if countMockActions(state, mockdriver.ActionPressKey, "back") == 0 {
t.Fatal("the overlay was never dismissed, so the guard this test is about never ran")
}
if countMockActions(state, mockdriver.ActionLaunch, "") != 0 {
t.Fatal("a resumed-but-obscured app must not be relaunched")
}
return violations
}
t.Run("one transaction per tap is not a double submit", func(t *testing.T) {
if violations := run(t, 1); len(violations) != 0 {
t.Errorf("the counting property convicted a healthy app: %v\n"+
"one transaction rose against a submit the runner dispatched, and the "+
"spec was told no action happened because a system window took the focus",
violations)
}
})
t.Run("two transactions per tap still convicts", func(t *testing.T) {
violations := run(t, 2)
if len(violations) == 0 {
t.Fatal("the counting property missed a double submit; the harness never " +
"put the property in a position to fire, so the case above proves nothing")
}
if violations[0].Properties[0] != "submitCommitsOneTransactionPerAction" {
t.Errorf("violated %v, want submitCommitsOneTransactionPerAction", violations[0].Properties)
}
})
}
+203 -27
View File
@@ -52,6 +52,11 @@ type Summary struct {
EndTime time.Time
Steps int
Violations []ViolationRecord
// SkippedVerification counts the steps whose tree was still moving when it
// was read, so no property judged them. A green run that skipped most of
// its steps checked almost nothing, and nothing else in the output would
// say so.
SkippedVerification int
// UnsupportedVerbs lists verbs the picker requested that the platform
// could not dispatch, deduped, so the report can flag a spec exercising
// gestures this target does not support.
@@ -89,11 +94,13 @@ func Run(ctx context.Context, options Options) (Summary, error) {
return Summary{}, err
}
_, pageExtractors := extractorSource.(webSource)
rereadHierarchy := driverIsAndroid(ctx, options, logger)
summary := Summary{StartTime: time.Now()}
deadline := summary.StartTime.Add(options.Duration)
stepIndex := 0
consecutiveApplyFailures := 0
heldSteps := 0
var lastAction *verifier.Action
var lastLogTime time.Time
for time.Now().Before(deadline) {
@@ -110,8 +117,23 @@ func Run(ctx context.Context, options Options) (Summary, error) {
// backed out of (or otherwise left) the app, relaunch it before we
// observe or act, so properties never evaluate against a foreign app
// and actions never land outside the app.
if ensureForeground(ctx, options, logger, stepIndex) {
lastAction = nil
//
// What the guard did is reported to the spec on the action it followed,
// because dropping that action says "nothing ran between these two
// readings" and the runner has no business saying that: the action ran,
// and a property told otherwise convicts the app of an effect with no
// cause. See foreground_guard_last_action_test.go.
guard := ensureForeground(ctx, options, logger, stepIndex)
if lastAction != nil {
switch guard {
case foregroundRelaunched:
lastAction.Relaunched = true
case foregroundOverlayDismissed:
// A system window owned the focused window, so whether the app
// itself ever received this action is exactly the unknown
// Applied already has a state for.
lastAction.Applied = false
}
}
// Hierarchy, metrics, and logs are independent device reads. Run
@@ -132,7 +154,8 @@ func Run(ctx context.Context, options Options) (Summary, error) {
// screenshot describe the same frame, then re-fetches the pair
// while the tree still looks transitional.
g.Go(func() error {
tree, screenshotPNG, transitional, hierarchyErr = fetchSyncedState(gctx, options, logger, si)
tree, screenshotPNG, transitional, hierarchyErr = fetchSyncedState(
gctx, options, logger, si, rereadHierarchy)
return nil
})
g.Go(func() error {
@@ -173,8 +196,10 @@ func Run(ctx context.Context, options Options) (Summary, error) {
screen = tree.Elements[0].Screen
}
// Transitional trees describe a NavHost mid cross-fade. Pushing
// one would poison the verifier's previous/current extractor
// A transitional tree is one nothing can vouch for: a NavHost mid
// cross-fade, a screen that changed shape between two reads, or a
// hierarchy that came back empty. Pushing one would poison the
// verifier's previous/current extractor
// advance, so the next clean step would compare against this
// transient state and emit false-positive violations. We still
// record the step (hierarchy + screenshot) for replay-side
@@ -247,18 +272,44 @@ func Run(ctx context.Context, options Options) (Summary, error) {
extractorChanges = encodeExtractorChanges(options.Verifier.ChangedExtractors())
} else {
skippedVerification = true
logger.Warn("transitional tree after retry budget; skipping verifier",
summary.SkippedVerification++
logger.Warn("unsettled tree; skipping verifier",
"step", stepIndex, "screen", screen, "nodes", treeSize)
}
logger.Info("step", "index", stepIndex, "screen", screen, "nodes", treeSize)
nextAction, nextErr := actionSource.NextAction(ctx)
// A frame the verifier would not look at is not one to act on either.
// #75 is the fuzzer tapping into a screen that is still filling in, and
// holding the action back is also what keeps the spec's view of the run
// continuous: the action a step applies is reported on the NEXT step the
// verifier accepts, so acting here would leave the action applied last
// step unreported for good, and a property counting actions against
// their effects would then see an effect whose cause the runner
// swallowed. See TestRunner_ASkippedStepDoesNotSwallowTheActionBeforeIt.
//
// Bounded, because a screen that never settles must not stall the whole
// run: past the bound the runner acts anyway, which is where it was
// before this held anything back.
held := skippedVerification && heldSteps < maxHeldSteps
if held {
heldSteps++
logger.Warn("screen still moving; holding this step's action back",
"step", stepIndex, "held", heldSteps)
} else {
heldSteps = 0
}
var nextAction verifier.Action
nextErr := verifier.ErrNoAction
var traceAction *trace.Action
if nextErr == nil {
traceAction = traceActionFor(nextAction, tree)
stampActionSource(traceAction, actionSource)
} else if !errors.Is(nextErr, verifier.ErrNoAction) {
return summary, fmt.Errorf("step %d next action: %w", stepIndex, nextErr)
if !held {
nextAction, nextErr = actionSource.NextAction(ctx)
if nextErr == nil {
traceAction = traceActionFor(nextAction, tree)
stampActionSource(traceAction, actionSource)
} else if !errors.Is(nextErr, verifier.ErrNoAction) {
return summary, fmt.Errorf("step %d next action: %w", stepIndex, nextErr)
}
}
residuals, residualErr := encodeResiduals(options.Verifier.Residuals())
@@ -266,7 +317,7 @@ func Run(ctx context.Context, options Options) (Summary, error) {
logger.Warn("residual encode failed", "step", stepIndex, "err", residualErr)
}
applySkipped := false
applySkipped := held
if nextErr == nil && !appIsForeground(ctx, options) {
// The app left the foreground between observe and apply (a prior
// action's gesture settling late, or an async navigation). The
@@ -311,9 +362,12 @@ func Run(ctx context.Context, options Options) (Summary, error) {
applied.Applied = true
lastAction = &applied
}
} else {
} else if !held {
lastAction = nil
}
// A held step leaves lastAction alone on purpose: nothing ran here, and
// the action it points at is still the one the next verified step has to
// be told about.
step := trace.Step{
Index: stepIndex,
@@ -396,6 +450,10 @@ func RenderSummary(w io.Writer, summary Summary, platform string) {
fmt.Fprintf(w, " step %d: %v\n", violation.StepIndex, violation.Properties)
}
}
if summary.SkippedVerification > 0 {
fmt.Fprintf(w, "%d step(s) judged by nothing: the screen was still moving when it was read\n",
summary.SkippedVerification)
}
if len(summary.UnsupportedVerbs) > 0 {
fmt.Fprintf(w, "unsupported on %s: %s\n",
platform, strings.Join(summary.UnsupportedVerbs, ", "))
@@ -445,20 +503,38 @@ func resolveIdleTimeout(options Options) time.Duration {
return timeout
}
// foregroundGuard is what ensureForeground had to do to put the app back in
// front. The two interventions are separate values because they are separate
// facts about the action they follow: a relaunch leaves it confirmed but
// straddling a restart, while a system window holding the focus leaves it
// dispatched with no way to tell whether the app received it.
type foregroundGuard int
const (
foregroundIntact foregroundGuard = iota
foregroundOverlayDismissed
foregroundRelaunched
)
// ensureForeground keeps the app under test in the foreground. When the driver
// can report the foreground app and it no longer matches the bundle under test,
// the app is relaunched. Returns true when a relaunch happened so the caller
// can drop the now-stale lastAction. Drivers without ForegroundChecker (web,
// the app is relaunched. Reports what it did so the caller can pass that on to
// the spec through the previous action. Drivers without ForegroundChecker (web,
// iOS) are a no-op.
func ensureForeground(ctx context.Context, options Options, logger *slog.Logger, stepIndex int) bool {
func ensureForeground(
ctx context.Context,
options Options,
logger *slog.Logger,
stepIndex int,
) foregroundGuard {
checker, ok := options.Driver.(driver.ForegroundChecker)
if !ok || options.BundleID == "" {
return false
return foregroundIntact
}
foreground, err := checker.ForegroundApp(ctx)
if err != nil {
logger.Warn("foreground check failed", "step", stepIndex, "err", err)
return false
return foregroundIntact
}
if foreground != "" && foreground != options.BundleID {
logger.Warn("app left foreground; relaunching",
@@ -471,7 +547,7 @@ func ensureForeground(ctx context.Context, options Options, logger *slog.Logger,
// window, so it never acts outside the app no matter how slow the
// relaunch settles.
awaitForeground(ctx, options, logger, stepIndex)
return true
return foregroundRelaunched
}
// The app is the resumed activity, but a system overlay can still own the
// focused window while the app stays resumed: a fuzzer swipe starting in the
@@ -481,15 +557,15 @@ func ensureForeground(ctx context.Context, options Options, logger *slog.Logger,
// the app again.
focusChecker, hasFocus := options.Driver.(driver.FocusedWindowChecker)
if !hasFocus {
return false
return foregroundIntact
}
focused, err := focusChecker.FocusedWindowApp(ctx)
if err != nil {
logger.Warn("focus check failed", "step", stepIndex, "err", err)
return false
return foregroundIntact
}
if focused == "" || focused == options.BundleID {
return false
return foregroundIntact
}
logger.Warn("system window obscuring app; dismissing",
"step", stepIndex, "focused", focused, "want", options.BundleID)
@@ -497,7 +573,7 @@ func ensureForeground(ctx context.Context, options Options, logger *slog.Logger,
logger.Warn("dismiss overlay failed", "step", stepIndex, "err", err)
}
settleForForeground(ctx, options)
return true
return foregroundOverlayDismissed
}
// appIsForeground reports whether the app under test currently owns the
@@ -931,10 +1007,17 @@ const (
// orthogonal case where the frame itself is transitional.
//
// The transitional return reports whether the retry budget was exhausted
// on a still-transitional tree. Callers use it to skip the verifier for
// that step so the previous/current extractor advance does not absorb
// on a still-transitional tree, or (when reread is set) whether a second
// hierarchy read disagreed with the first. Callers use it to skip the verifier
// for that step so the previous/current extractor advance does not absorb
// transient state.
func fetchSyncedState(ctx context.Context, options Options, logger *slog.Logger, stepIndex int) (tree *hierarchy.Tree, png []byte, transitional bool, err error) {
func fetchSyncedState(
ctx context.Context,
options Options,
logger *slog.Logger,
stepIndex int,
reread bool,
) (tree *hierarchy.Tree, png []byte, transitional bool, err error) {
var pngBytes []byte
var previousJSON string
retryLoop:
@@ -970,6 +1053,9 @@ retryLoop:
case <-timer.C:
}
}
if reread && err == nil && !transitional && changedOnReread(ctx, options, logger, stepIndex, tree) {
transitional = true
}
if len(pngBytes) > 0 {
if writeErr := options.TraceWriter.WriteScreenshot(stepIndex, pngBytes); writeErr != nil {
logger.Warn("screenshot write failed", "step", stepIndex, "err", writeErr)
@@ -978,6 +1064,88 @@ retryLoop:
return tree, pngBytes, transitional, err
}
// changedOnReread reads the hierarchy once more and reports whether the screen
// changed shape while we were looking at it. A Compose route can settle before
// its content composes (a lazy list mounts over several frames, a query lands a
// frame late), and a tree read in that window describes a screen that is still
// filling in. Two reads a read apart are the cheapest thing that can see it
// happening: the round trip IS the interval, so there is no sleep here.
//
// Waiting for the change to stop was measured on an API 34 device and refused:
// a 750ms-quiet poll capped at 2s cost a median 1434ms against 76ms for one
// read, hit its cap on every frame it fired for, and still handed back a frame
// that might be filling. Detecting is what the runner can act on, because a
// step it declines to verify is at worst a missed conviction, never a false
// one.
//
// A read that fails reports no change. Nothing about a dropped RPC says the
// screen was moving, and skipping verification on it would quietly spend the
// run's evidence on a flaky link.
func changedOnReread(
ctx context.Context,
options Options,
logger *slog.Logger,
stepIndex int,
first *hierarchy.Tree,
) bool {
// An empty tree is skipped by the caller anyway, so the read buys nothing.
if first == nil || len(first.Elements) == 0 {
return false
}
hierarchyJSON, err := options.Driver.Hierarchy(ctx)
if err != nil {
logger.Warn("second hierarchy read failed", "step", stepIndex, "err", err)
return false
}
second, err := hierarchy.Parse(hierarchyJSON)
if err != nil || second == nil {
logger.Warn("second hierarchy parse failed", "step", stepIndex, "err", err)
return false
}
if structuralShape(first) == structuralShape(second) {
return false
}
logger.Warn("screen changed between two reads; skipping verifier",
"step", stepIndex, "nodes", len(first.Elements), "then", len(second.Elements))
return true
}
// structuralShape renders what is on screen as its nodes' identities in tree
// order: how many there are, and which ids and classes they carry.
//
// Text and bounds are deliberately absent. A measure pass that moves pixels is
// not a screen still composing, and neither is a value arriving into a node
// that already exists, which this cannot tell apart from a clock ticking. This
// decides whether a property gets to judge at all, so it reads only what a
// change in what is on screen can move: a detector that fires on every step of
// a screen with a timer on it would leave the run green and vacuous, which is
// worse than the composition it set out to catch. The trade is measured rather
// than assumed: over 100 folio steps on an API 35 emulator, text moved under
// an unchanged shape on 1 step, and the shape itself moved on 1 other.
func structuralShape(tree *hierarchy.Tree) string {
var shape strings.Builder
for _, element := range tree.Elements {
shape.WriteString(element.ResourceID)
shape.WriteByte(0x1f)
shape.WriteString(element.Class)
shape.WriteByte(0x1e)
}
return shape.String()
}
// driverIsAndroid asks the driver what it is, once per run, so the step loop
// never repeats the RPC. It gates the reread: #75 is about Compose composition,
// and web and iOS have their own settle paths and no measurement saying an
// extra hierarchy read there is cheap. An unreadable answer is not android.
func driverIsAndroid(ctx context.Context, options Options, logger *slog.Logger) bool {
health, err := options.Driver.Health(ctx)
if err != nil {
logger.Warn("health read failed; not rereading the hierarchy", "err", err)
return false
}
return health.Platform == "android"
}
func traceActionFor(action verifier.Action, tree *hierarchy.Tree) *trace.Action {
traceAction := &trace.Action{Kind: string(action.Kind), X: action.X, Y: action.Y}
switch action.Kind {
@@ -1148,6 +1316,14 @@ func encodeResiduals(residuals map[string]ltl.Formula) (map[string]json.RawMessa
// would be spent doing nothing.
const maxConsecutiveApplyFailures = 3
// maxHeldSteps bounds how many steps in a row the runner will decline to act on
// because their screen was still moving. It is a livelock bound, not a settle
// budget: a screen that changes shape under every pair of reads (a live list, a
// spinner that mounts and unmounts) would otherwise take the whole run without
// the fuzzer ever touching it. Two is what the measured cases need, which came
// one step at a time and never twice in a row.
const maxHeldSteps = 2
// isWDADrop reports that the sidecar could not restart the iOS XCTest
// runner: the channel is gone for good and the run must abort. Transient
// drops are classified by the sidecar itself (it reconnects and surfaces
+30 -4
View File
@@ -196,6 +196,23 @@ func TestRenderSummary_OmitsUnsupportedLineWhenNone(t *testing.T) {
}
}
// A step nothing judged is not a step that passed. The run prints its count so
// a green summary cannot hide a run that skipped most of its steps, which is
// what a screen that keeps moving under the reads would produce.
func TestRenderSummary_CountsTheStepsNothingJudged(t *testing.T) {
var out bytes.Buffer
RenderSummary(&out, Summary{Steps: 10, SkippedVerification: 4}, "android")
if !strings.Contains(out.String(), "4 step(s) judged by nothing") {
t.Errorf("expected the unjudged-step count, got:\n%s", out.String())
}
out.Reset()
RenderSummary(&out, Summary{Steps: 10}, "android")
if strings.Contains(out.String(), "judged by nothing") {
t.Errorf("a run that judged every step must not print the line, got:\n%s", out.String())
}
}
func TestRunner_ViolationSurfacesInSummary(t *testing.T) {
state := newHarnessWithSpec(t, violationSpec)
@@ -1073,8 +1090,15 @@ func TestRunner_UsesAtomicSnapshot(t *testing.T) {
if snapshotCalls == 0 {
t.Errorf("expected at least one Snapshot call, got %d", snapshotCalls)
}
if hierarchyCalls != 0 {
t.Errorf("expected zero standalone Hierarchy calls (runner must use Snapshot), got %d", hierarchyCalls)
// The recorded pair still comes from Snapshot. The standalone hierarchy
// reads are the composition detector (changedOnReread), one per step at
// most, and they are never the source of what the step records.
if hierarchyCalls > summary.Steps {
t.Errorf("expected at most one standalone Hierarchy call per step (runner must observe through Snapshot), got %d over %d steps",
hierarchyCalls, summary.Steps)
}
if snapshotCalls < summary.Steps {
t.Errorf("expected a Snapshot per step, got %d over %d steps", snapshotCalls, summary.Steps)
}
if screenshotCalls != 0 {
t.Errorf("expected zero standalone Screenshot calls (runner must use Snapshot), got %d", screenshotCalls)
@@ -1894,8 +1918,10 @@ func TestEnsureForeground_DismissesSystemOverlay(t *testing.T) {
logger := slog.New(slog.NewTextHandler(io.Discard, &slog.HandlerOptions{Level: slog.LevelWarn}))
options := Options{BundleID: "app.folio", Driver: m, IdleTimeout: 10 * time.Millisecond}
if !ensureForeground(context.Background(), options, logger, 5) {
t.Fatal("expected the guard to act on the focus-stealing overlay")
got := ensureForeground(context.Background(), options, logger, 5)
if got != foregroundOverlayDismissed {
t.Fatalf("the guard reported %v, want foregroundOverlayDismissed; "+
"an obscured app is not a relaunched one", got)
}
backs, relaunches := 0, 0
for _, a := range m.Actions() {
@@ -22,7 +22,7 @@ import (
//
// The spec below is the real folio predicate pair, imported from the example,
// so what this asserts is the verdict the shipped property reaches.
const uncertainApplySpecTemplate = `
const submitCountingSpecTemplate = `
import { actions, always, extract, next, Tap } from "@sanderling/spec";
import {
committedTransactionsExceedSubmits,
@@ -90,12 +90,16 @@ func (d *dispatchThenFailDriver) Snapshot(context.Context) (string, driver.Image
return fmt.Sprintf(homeWithTxnCount, d.committed.Load()), driver.Image{}, nil
}
func (d *dispatchThenFailDriver) Hierarchy(context.Context) (string, error) {
return fmt.Sprintf(homeWithTxnCount, d.committed.Load()), nil
}
func TestRunner_ApplyErrorAfterDispatchDoesNotConvictTheSubmitCountingProperty(t *testing.T) {
predicates, err := filepath.Abs("../../examples/folio/sanderling/predicates.ts")
if err != nil {
t.Fatal(err)
}
spec := fmt.Sprintf(uncertainApplySpecTemplate, predicates)
spec := fmt.Sprintf(submitCountingSpecTemplate, predicates)
run := func(t *testing.T, commitsPerTap int64) []ViolationRecord {
t.Helper()
+6
View File
@@ -55,6 +55,12 @@ func (d *carrierWebDriver) Snapshot(ctx context.Context) (string, driver.Image,
func (d *carrierWebDriver) InstallBundle(context.Context, []byte) error { return nil }
// A web target says so. The runner's per-step hierarchy reread is android-only,
// and a fake claiming android would take a path no chrome run takes.
func (d *carrierWebDriver) Health(context.Context) (driver.Health, error) {
return driver.Health{Ready: true, Version: "fake", Platform: "web"}, nil
}
func (d *carrierWebDriver) EvaluateExtractors(context.Context) (map[int]json.RawMessage, error) {
d.reads++
return map[int]json.RawMessage{0: json.RawMessage(strconv.Itoa(d.reads))}, nil
+2 -2
View File
@@ -72,7 +72,7 @@ func TestRunner_WebInstallsLastActionInThePage(t *testing.T) {
// Every later step carries what the runner actually applied. The shape is
// the goja host's (internal/verifier/marshal.go lastActionFields), pinned
// against it by TestLastAction_WebJSONMatchesTheGojaObject.
const want = `{"kind":"Tap","applied":true,"on":"id:TxnSubmit"}`
const want = `{"kind":"Tap","applied":true,"relaunched":null,"on":"id:TxnSubmit"}`
if web.installed[1] != want {
t.Errorf("step 2 installed %s, want %s", web.installed[1], want)
}
@@ -112,7 +112,7 @@ func TestRunner_WebInstallsAnUnconfirmedActionWithItsFateUnknown(t *testing.T) {
t.Fatalf("the page was handed lastAction %d time(s); the web path never installed it",
len(web.installed))
}
const want = `{"kind":"Tap","applied":null,"on":"id:TxnSubmit"}`
const want = `{"kind":"Tap","applied":null,"relaunched":null,"on":"id:TxnSubmit"}`
if web.installed[1] != want {
t.Errorf("step 2 installed %s, want %s", web.installed[1], want)
}
+15 -2
View File
@@ -84,6 +84,17 @@ var newDeviceDriver = func(ctx context.Context, options ioscompanion.DeviceOptio
return d, d.Close, nil
}
// newSimulatorDriver constructs the iOS simulator driver and its cleanup. A
// seam so routing tests assert the run's options reach ioscompanion.Options
// without spawning a companion.
var newSimulatorDriver = func(ctx context.Context, options ioscompanion.Options) (driver.DeviceDriver, func(), error) {
d, err := ioscompanion.New(ctx, options)
if err != nil {
return nil, nil, err
}
return d, d.Close, nil
}
// buildDriver creates the appropriate DeviceDriver for the platform and returns
// a cleanup function. For web, ChromeDriver is used directly. An iOS simulator
// is driven by the native simulator companion (no JVM). A physical iOS device
@@ -99,16 +110,17 @@ func buildDriver(ctx context.Context, options Options, stdout io.Writer) (driver
}
if options.Platform == "ios" && options.iosIsSimulator {
d, err := ioscompanion.New(ctx, ioscompanion.Options{
d, cleanup, err := newSimulatorDriver(ctx, ioscompanion.Options{
UniqueDeviceIdentifier: options.iosUDID,
BundleID: options.BundleID,
AppPath: options.IosAppPath,
ClearState: options.ClearData,
Output: stdout,
})
if err != nil {
return nil, nil, fmt.Errorf("ios simulator driver: %w", err)
}
return d, d.Close, nil
return d, cleanup, nil
}
if options.Platform == "ios" {
@@ -117,6 +129,7 @@ func buildDriver(ctx context.Context, options Options, stdout io.Writer) (driver
CoreDeviceID: options.iosCoreDeviceID,
BundleID: options.BundleID,
AppPath: options.IosAppPath,
ClearState: options.ClearData,
Output: stdout,
})
if err != nil {
+30 -1
View File
@@ -27,7 +27,7 @@ func TestBuildDriverRoutesPhysicalIOSToDeviceDriver(t *testing.T) {
return stubDeviceDriver{}, func() { closed = true }, nil
}
options := Options{Platform: "ios", BundleID: "app.folio", IosAppPath: "/tmp/iosApp.app"}
options := Options{Platform: "ios", BundleID: "app.folio", IosAppPath: "/tmp/iosApp.app", ClearData: true}
options.iosIsSimulator = false
options.iosUDID = "00008140-HW"
options.iosCoreDeviceID = "CORE-1"
@@ -45,12 +45,41 @@ func TestBuildDriverRoutesPhysicalIOSToDeviceDriver(t *testing.T) {
if got.BundleID != "app.folio" || got.AppPath != "/tmp/iosApp.app" {
t.Fatalf("DeviceOptions = %+v, want bundle and app path threaded through", got)
}
if !got.ClearState {
t.Fatalf("DeviceOptions = %+v, want clear-data threaded through: the driver clears before its session, so a launch cannot", got)
}
cleanup()
if !closed {
t.Fatal("cleanup must close the device driver")
}
}
func TestBuildDriverThreadsClearStateToTheSimulatorDriver(t *testing.T) {
stubPreflight(t)
original := newSimulatorDriver
t.Cleanup(func() { newSimulatorDriver = original })
var got ioscompanion.Options
newSimulatorDriver = func(_ context.Context, options ioscompanion.Options) (driver.DeviceDriver, func(), error) {
got = options
return stubDeviceDriver{}, func() {}, nil
}
options := Options{Platform: "ios", BundleID: "app.folio", IosAppPath: "/tmp/iosApp.app", ClearData: true}
options.iosIsSimulator = true
options.iosUDID = "SIM-UDID"
if _, _, err := buildDriver(context.Background(), options, io.Discard); err != nil {
t.Fatalf("buildDriver: %v", err)
}
if got.UniqueDeviceIdentifier != "SIM-UDID" || got.BundleID != "app.folio" || got.AppPath != "/tmp/iosApp.app" {
t.Fatalf("Options = %+v, want the resolved target, bundle and app path", got)
}
if !got.ClearState {
t.Fatalf("Options = %+v, want clear-data threaded through: the driver clears before its session, so a launch cannot", got)
}
}
func TestBuildDriverSurfacesDeviceConstructionError(t *testing.T) {
stubPreflight(t)
original := newDeviceDriver
+75
View File
@@ -2,6 +2,7 @@ package verifier
import (
"os"
"strconv"
"testing"
"github.com/priyanshujain/sanderling/internal/hierarchy"
@@ -99,3 +100,77 @@ func TestStateAxFindWorks(t *testing.T) {
t.Fatalf("findAll count = %d, want 1", count)
}
}
// axSelectorFormsTree carries one node per id shape a dump produces: the bare
// tag Compose and the web driver emit, the package-qualified resource id
// Android emits, and the iOS accessibility identifier.
const axSelectorFormsTree = `{
"attributes": {"resource-id": "root", "bounds": "[0,0,400,800]"},
"children": [
{"attributes": {"resource-id": "BareThing", "text": "bare", "bounds": "[0,0,100,50]"},
"children": []},
{"attributes": {"resource-id": "com.example.app:id/AndroidThing", "text": "android",
"bounds": "[0,50,100,100]"}, "children": []},
{"attributes": {"accessibilityIdentifier": "IosThing", "text": "ios",
"bounds": "[0,100,100,150]"}, "children": []}
]
}`
// TestStateAxSelectorFormsAgree drives both selector forms a spec can write
// through state.ax.find and holds them to the same element. The two forms
// dispatch to different lookups (findNodeFromJS sends a string to FindNode and
// an object to FindBySelector), and the object one used to skip the id rule
// that knows an Android resource id is package-qualified, so a spec that wrote
// ax.find({id: "AddAccountSubmit"}) got undefined on Android and every property
// reading it passed while checking nothing.
func TestStateAxSelectorFormsAgree(t *testing.T) {
tree, err := hierarchy.Parse(axSelectorFormsTree)
if err != nil {
t.Fatal(err)
}
for _, test := range []struct {
value string
want string
}{
{"BareThing", "bare"},
{"AndroidThing", "android"},
{"com.example.app:id/AndroidThing", "android"},
{"IosThing", "ios"},
} {
t.Run(test.value, func(t *testing.T) {
verifier := newVerifier(t)
mustLoad(t, verifier, `
globalThis.fromObject = __sanderling__.extract(
state => state.ax.find({ id: `+strconv.Quote(test.value)+` })?.text, "fromObject");
globalThis.fromString = __sanderling__.extract(
state => state.ax.find("id:" + `+strconv.Quote(test.value)+`)?.text, "fromString");
globalThis.properties = {};
`)
if err := verifier.PushSnapshot(SnapshotInput{Tree: tree}); err != nil {
t.Fatal(err)
}
fromObject := readCurrent(t, verifier, "fromObject")
fromString := readCurrent(t, verifier, "fromString")
if fromString != test.want {
t.Fatalf(`ax.find("id:%s") read %v, want %q`, test.value, fromString, test.want)
}
if fromObject != fromString {
t.Errorf(
`one selector, two answers: ax.find({id: %q}) read %v and ax.find("id:%s") read %v`,
test.value, fromObject, test.value, fromString,
)
}
})
}
}
// readCurrent returns a named extractor's current value, or nil when the getter
// returned undefined, which is what an unresolved selector produces.
func readCurrent(t *testing.T, verifier *Verifier, name string) any {
t.Helper()
handle := verifier.runtime.GlobalObject().Get(name)
if handle == nil {
t.Fatalf("%s is not defined", name)
}
return handle.ToObject(verifier.runtime).Get("current").Export()
}
@@ -177,3 +177,79 @@ func compactJSON(t *testing.T, source string) string {
}
return compact.String()
}
// TestExtractorEncoding_NestedUndefinedIsNotOnTheWire pins the one reading
// shape the two hosts do NOT encode alike, rather than hiding it.
//
// JSON has no undefined, so the page loses the whole key (asserted in
// pkg/spec/test/web-runtime.test.ts) while goja writes null. goja cannot mirror
// the drop: Export reports an undefined member and a null member identically as
// nil, so dropping those keys here would drop the genuine nulls the page keeps.
// Mirroring the other way, by writing null on the page, would break the one
// thing that does agree. Carrying the member across takes a wire format that
// can express undefined, which is a change to every layer that parses a reading
// and to the replay UI that renders one.
//
// So the guarantee is narrower than "the same object": both hosts answer
// undefined when a property READS the member. Key presence (`in`, Object.keys)
// is not part of it, and this test says so out loud, so closing the gap has to
// be a deliberate change to both hosts at once.
func TestExtractorEncoding_NestedUndefinedIsNotOnTheWire(t *testing.T) {
const reading = `({ absent: undefined, empty: null, present: 1 })`
const fromGoja = `{"absent":null,"empty":null,"present":1}`
// What the page sends for the same getter, with the key gone.
const fromWeb = `{"empty":null,"present":1}`
if got := encodeSpecValue(t, reading); got != fromGoja {
t.Errorf("goja encoded the reading as %s, want %s", got, fromGoja)
}
native := newVerifier(t)
mustLoad(t, native, "__sanderling__.extract(state => "+reading+", \"value\");\nglobalThis.properties = {};")
if err := native.PushSnapshot(SnapshotInput{}); err != nil {
t.Fatal(err)
}
web := newVerifier(t)
mustLoad(t, web, "__sanderling__.extract(state => null, \"value\");\nglobalThis.properties = {};")
if err := web.PushSnapshot(SnapshotInput{}); err != nil {
t.Fatal(err)
}
if _, err := web.OverrideExtractorValues(map[int]json.RawMessage{0: json.RawMessage(fromWeb)}); err != nil {
t.Fatal(err)
}
for _, probe := range []struct {
expression string
native bool
web bool
}{
{"reading.absent === undefined", true, true},
{"reading.empty === null", true, true},
{"reading.present === 1", true, true},
// The half that does not survive the wire.
{`"absent" in reading`, true, false},
} {
if got := evaluateAgainstReading(t, native, probe.expression); got != probe.native {
t.Errorf("goja host: %s is %v, want %v", probe.expression, got, probe.native)
}
if got := evaluateAgainstReading(t, web, probe.expression); got != probe.web {
t.Errorf("web host: %s is %v, want %v", probe.expression, got, probe.web)
}
}
}
// evaluateAgainstReading answers a boolean expression over the value a property
// would read out of the first extractor, which is where the two hosts have to
// agree.
func evaluateAgainstReading(t *testing.T, verifier *Verifier, expression string) bool {
t.Helper()
if err := verifier.runtime.GlobalObject().Set("reading", verifier.extractors[0].currentValue); err != nil {
t.Fatal(err)
}
value, err := verifier.runtime.RunString(expression)
if err != nil {
t.Fatalf("evaluate %s: %v", expression, err)
}
return value.ToBoolean()
}
+11
View File
@@ -353,9 +353,20 @@ func lastActionFields(action *Action) []actionField {
if action.Applied {
applied = true
}
// A relaunch between two readings is not "no action happened", which is
// what dropping the action reported instead: the app restarted after an
// action that did run. Only the positive report is a fact the runner can
// vouch for, so the other side is null rather than false: a target whose
// foreground the runner cannot read (web, iOS) never relaunches the app and
// still cannot promise it never restarted.
var relaunched any
if action.Relaunched {
relaunched = true
}
fields := []actionField{
{key: "kind", value: string(action.Kind)},
{key: "applied", value: applied},
{key: "relaunched", value: relaunched},
}
if action.On != "" {
fields = append(fields, actionField{key: "on", value: action.On})
+49
View File
@@ -169,6 +169,7 @@ func TestLastAction_WebJSONMatchesTheGojaObject(t *testing.T) {
{"nil", nil},
{"Tap", &Action{Kind: ActionKindTap, On: "id:TxnSubmit", X: 12, Y: 34}},
{"TapApplied", &Action{Kind: ActionKindTap, On: "id:TxnSubmit", Applied: true}},
{"TapRelaunched", &Action{Kind: ActionKindTap, On: "id:TxnSubmit", Applied: true, Relaunched: true}},
{"TapWithoutSelector", &Action{Kind: ActionKindTap, X: 12, Y: 34}},
{"DoubleTap", &Action{Kind: ActionKindDoubleTap, On: `desc:say "hi" <b>`}},
{"InputText", &Action{Kind: ActionKindInputText, On: "id:field", Text: "50"}},
@@ -233,3 +234,51 @@ func TestLastAction_SeparatesNoActionFromAnActionOfUnknownFate(t *testing.T) {
})
}
}
// The runner relaunches the app when it leaves the foreground, which used to be
// reported to the spec as "no action ran between these two readings". The
// action did run; what a property cannot assume across it is that app state was
// continuous, so the relaunch is its own fact on an action that keeps its
// confirmed dispatch.
func TestLastAction_ReportsARelaunchSeparatelyFromTheDispatch(t *testing.T) {
verifier := newVerifier(t)
mustLoad(t, verifier, `
globalThis.continuity = __sanderling__.extract(state =>
state.lastAction === null ? "no action"
: state.lastAction.applied !== true ? "unconfirmed"
: state.lastAction.relaunched === true ? "applied across a relaunch"
: state.lastAction.relaunched === null ? "applied, no relaunch reported"
: "unreadable");
`)
for _, testCase := range []struct {
name string
action *Action
want string
}{
{"nothing ran", nil, "no action"},
{
"confirmed, app stayed",
&Action{Kind: ActionKindTap, On: "id:TxnSubmit", Applied: true},
"applied, no relaunch reported",
},
{
"confirmed, app relaunched after it",
&Action{Kind: ActionKindTap, On: "id:TxnSubmit", Applied: true, Relaunched: true},
"applied across a relaunch",
},
} {
t.Run(testCase.name, func(t *testing.T) {
if err := verifier.PushSnapshot(SnapshotInput{
Snapshots: Snapshots{},
LastAction: testCase.action,
}); err != nil {
t.Fatal(err)
}
handle := verifier.runtime.GlobalObject().Get("continuity").ToObject(verifier.runtime)
if got := handle.Get("current").String(); got != testCase.want {
t.Errorf("the spec read %q, want %q", got, testCase.want)
}
})
}
}
+6
View File
@@ -38,6 +38,12 @@ type Action struct {
// when the apply call failed and nothing can say whether the action
// reached the app. The spec is told which of the two it is.
Applied bool
// Relaunched, like Applied, is meaningful only on state.lastAction: the
// runner brought the app back to the foreground after this action, so the
// two readings the spec compares straddle a restart. The action still
// happened; what a property cannot assume across it is that app state ran
// continuously from one reading to the next.
Relaunched bool
}
// LogEntry mirrors a logcat line captured between steps.
+202
View File
@@ -0,0 +1,202 @@
Apache License
Version 2.0, January 2004
http://www.apache.org/licenses/
TERMS AND CONDITIONS FOR USE, REPRODUCTION, AND DISTRIBUTION
1. Definitions.
"License" shall mean the terms and conditions for use, reproduction,
and distribution as defined by Sections 1 through 9 of this document.
"Licensor" shall mean the copyright owner or entity authorized by
the copyright owner that is granting the License.
"Legal Entity" shall mean the union of the acting entity and all
other entities that control, are controlled by, or are under common
control with that entity. For the purposes of this definition,
"control" means (i) the power, direct or indirect, to cause the
direction or management of such entity, whether by contract or
otherwise, or (ii) ownership of fifty percent (50%) or more of the
outstanding shares, or (iii) beneficial ownership of such entity.
"You" (or "Your") shall mean an individual or Legal Entity
exercising permissions granted by this License.
"Source" form shall mean the preferred form for making modifications,
including but not limited to software source code, documentation
source, and configuration files.
"Object" form shall mean any form resulting from mechanical
transformation or translation of a Source form, including but
not limited to compiled object code, generated documentation,
and conversions to other media types.
"Work" shall mean the work of authorship, whether in Source or
Object form, made available under the License, as indicated by a
copyright notice that is included in or attached to the work
(an example is provided in the Appendix below).
"Derivative Works" shall mean any work, whether in Source or Object
form, that is based on (or derived from) the Work and for which the
editorial revisions, annotations, elaborations, or other modifications
represent, as a whole, an original work of authorship. For the purposes
of this License, Derivative Works shall not include works that remain
separable from, or merely link (or bind by name) to the interfaces of,
the Work and Derivative Works thereof.
"Contribution" shall mean any work of authorship, including
the original version of the Work and any modifications or additions
to that Work or Derivative Works thereof, that is intentionally
submitted to Licensor for inclusion in the Work by the copyright owner
or by an individual or Legal Entity authorized to submit on behalf of
the copyright owner. For the purposes of this definition, "submitted"
means any form of electronic, verbal, or written communication sent
to the Licensor or its representatives, including but not limited to
communication on electronic mailing lists, source code control systems,
and issue tracking systems that are managed by, or on behalf of, the
Licensor for the purpose of discussing and improving the Work, but
excluding communication that is conspicuously marked or otherwise
designated in writing by the copyright owner as "Not a Contribution."
"Contributor" shall mean Licensor and any individual or Legal Entity
on behalf of whom a Contribution has been received by Licensor and
subsequently incorporated within the Work.
2. Grant of Copyright License. Subject to the terms and conditions of
this License, each Contributor hereby grants to You a perpetual,
worldwide, non-exclusive, no-charge, royalty-free, irrevocable
copyright license to reproduce, prepare Derivative Works of,
publicly display, publicly perform, sublicense, and distribute the
Work and such Derivative Works in Source or Object form.
3. Grant of Patent License. Subject to the terms and conditions of
this License, each Contributor hereby grants to You a perpetual,
worldwide, non-exclusive, no-charge, royalty-free, irrevocable
(except as stated in this section) patent license to make, have made,
use, offer to sell, sell, import, and otherwise transfer the Work,
where such license applies only to those patent claims licensable
by such Contributor that are necessarily infringed by their
Contribution(s) alone or by combination of their Contribution(s)
with the Work to which such Contribution(s) was submitted. If You
institute patent litigation against any entity (including a
cross-claim or counterclaim in a lawsuit) alleging that the Work
or a Contribution incorporated within the Work constitutes direct
or contributory patent infringement, then any patent licenses
granted to You under this License for that Work shall terminate
as of the date such litigation is filed.
4. Redistribution. You may reproduce and distribute copies of the
Work or Derivative Works thereof in any medium, with or without
modifications, and in Source or Object form, provided that You
meet the following conditions:
(a) You must give any other recipients of the Work or
Derivative Works a copy of this License; and
(b) You must cause any modified files to carry prominent notices
stating that You changed the files; and
(c) You must retain, in the Source form of any Derivative Works
that You distribute, all copyright, patent, trademark, and
attribution notices from the Source form of the Work,
excluding those notices that do not pertain to any part of
the Derivative Works; and
(d) If the Work includes a "NOTICE" text file as part of its
distribution, then any Derivative Works that You distribute must
include a readable copy of the attribution notices contained
within such NOTICE file, excluding those notices that do not
pertain to any part of the Derivative Works, in at least one
of the following places: within a NOTICE text file distributed
as part of the Derivative Works; within the Source form or
documentation, if provided along with the Derivative Works; or,
within a display generated by the Derivative Works, if and
wherever such third-party notices normally appear. The contents
of the NOTICE file are for informational purposes only and
do not modify the License. You may add Your own attribution
notices within Derivative Works that You distribute, alongside
or as an addendum to the NOTICE text from the Work, provided
that such additional attribution notices cannot be construed
as modifying the License.
You may add Your own copyright statement to Your modifications and
may provide additional or different license terms and conditions
for use, reproduction, or distribution of Your modifications, or
for any such Derivative Works as a whole, provided Your use,
reproduction, and distribution of the Work otherwise complies with
the conditions stated in this License.
5. Submission of Contributions. Unless You explicitly state otherwise,
any Contribution intentionally submitted for inclusion in the Work
by You to the Licensor shall be under the terms and conditions of
this License, without any additional terms or conditions.
Notwithstanding the above, nothing herein shall supersede or modify
the terms of any separate license agreement you may have executed
with Licensor regarding such Contributions.
6. Trademarks. This License does not grant permission to use the trade
names, trademarks, service marks, or product names of the Licensor,
except as required for reasonable and customary use in describing the
origin of the Work and reproducing the content of the NOTICE file.
7. Disclaimer of Warranty. Unless required by applicable law or
agreed to in writing, Licensor provides the Work (and each
Contributor provides its Contributions) on an "AS IS" BASIS,
WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or
implied, including, without limitation, any warranties or conditions
of TITLE, NON-INFRINGEMENT, MERCHANTABILITY, or FITNESS FOR A
PARTICULAR PURPOSE. You are solely responsible for determining the
appropriateness of using or redistributing the Work and assume any
risks associated with Your exercise of permissions under this License.
8. Limitation of Liability. In no event and under no legal theory,
whether in tort (including negligence), contract, or otherwise,
unless required by applicable law (such as deliberate and grossly
negligent acts) or agreed to in writing, shall any Contributor be
liable to You for damages, including any direct, indirect, special,
incidental, or consequential damages of any character arising as a
result of this License or out of the use or inability to use the
Work (including but not limited to damages for loss of goodwill,
work stoppage, computer failure or malfunction, or any and all
other commercial damages or losses), even if such Contributor
has been advised of the possibility of such damages.
9. Accepting Warranty or Additional Liability. While redistributing
the Work or Derivative Works thereof, You may choose to offer,
and charge a fee for, acceptance of support, warranty, indemnity,
or other liability obligations and/or rights consistent with this
License. However, in accepting such obligations, You may act only
on Your own behalf and on Your sole responsibility, not on behalf
of any other Contributor, and only if You agree to indemnify,
defend, and hold each Contributor harmless for any liability
incurred by, or claims asserted against, such Contributor by reason
of your accepting any such warranty or additional liability.
END OF TERMS AND CONDITIONS
APPENDIX: How to apply the Apache License to your work.
To apply the Apache License to your work, attach the following
boilerplate notice, with the fields enclosed by brackets "[]"
replaced with your own identifying information. (Don't include
the brackets!) The text should be enclosed in the appropriate
comment syntax for the file format. We also recommend that a
file or class name and description of purpose be included on the
same "printed page" as the copyright notice for easier
identification within third-party archives.
Copyright 2026 Priyanshu Jain
Licensed under the Apache License, Version 2.0 (the "License");
you may not use this file except in compliance with the License.
You may obtain a copy of the License at
http://www.apache.org/licenses/LICENSE-2.0
Unless required by applicable law or agreed to in writing, software
distributed under the License is distributed on an "AS IS" BASIS,
WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
See the License for the specific language governing permissions and
limitations under the License.
+10 -1
View File
@@ -109,8 +109,17 @@ export interface ExceptionRecord {
* tap landed. Null is unknown, not "it did not happen" (`state.lastAction` is
* itself null for that), so a property attributing an effect to this action
* has to decline unless `applied` is true.
*
* `relaunched` is true when the runner had to bring the app back to the
* foreground after this action, so the previous reading and the current one
* straddle a restart. The action itself still happened; what a property cannot
* assume across it is that app state ran continuously between the two readings,
* and one demanding an effect of this action has to decline. Null is "not
* reported", which is weaker than "the app never restarted": a target whose
* foreground the runner cannot read never relaunches the app and cannot promise
* that either.
*/
export type LastAction = Action & { applied: true | null };
export type LastAction = Action & { applied: true | null; relaunched: true | null };
export interface State {
snapshots: Snapshots;
+8 -3
View File
@@ -193,13 +193,18 @@ function selectorFromString(selector: string): { css?: string; xpath?: string }
// (Compose for Web mounts its canvas and its whole accessibility tree inside a
// shadow root on the mount element) keeps its entire UI on the far side of one:
// without this a spec sees four nodes and can neither enumerate a target nor
// resolve a testTag. Light-DOM matches come first, then shadow content in walk
// order. XPath has no equivalent, so `text:` selectors stop at the boundary.
// resolve a testTag. Matches come back in the order expandShadowContent walks
// and buildTree (internal/driver/chrome/driver.go) emits: a host, then that
// host's shadow content, then the host's light children. Sweeping the light DOM
// first and descending afterwards put a shadow-hosted match behind a later
// light-DOM one, so find() answered with a different element on each host.
// XPath has no equivalent, so `text:` selectors stop at the boundary.
function deepQueryAll(selector: string, root: ParentNode): Element[] {
const found: Element[] = [];
const visit = (scope: ParentNode): void => {
for (const element of Array.from(scope.querySelectorAll(selector))) found.push(element);
const matched = new Set<Element>(Array.from(scope.querySelectorAll(selector)));
for (const element of Array.from(scope.querySelectorAll<HTMLElement>("*"))) {
if (matched.has(element)) found.push(element);
if (element.shadowRoot) visit(element.shadowRoot);
}
};
@@ -65,6 +65,18 @@ test("name ending in digits does not leak into the balance", () => {
assert.equal(balanceOf(card("20", "2024", 3, "-$1,234.56")), -123456);
});
// The limit of a key read off merged text, and the reason homeTxnCountsOf
// guards the ambiguity rather than resolving it: two DIFFERENT accounts render
// the same card, character for character. Names are unique (Accounts.name is
// UNIQUE, checked NOCASE) but the count runs straight into a name that ends in
// digits, so nothing computed from this string can say which account it is.
test("two accounts can render one card, so no key off it can be injective", () => {
const travel1 = card("TR", "Travel1", 25, "$120.00");
const travel12 = card("TR", "Travel12", 5, "$120.00");
assert.equal(travel1, travel12);
assert.equal(cardAccountName({ childText: undefined, cardText: travel1 }), "TRTravel");
});
// The account key only has to be stable and per-account. newAccountBalanceIsZero
// reads it as a set member: a key that drifted as an account's transaction
// count grew would make an existing account look brand new, and the property
+441
View File
@@ -0,0 +1,441 @@
import assert from "node:assert/strict";
import { test } from "node:test";
import {
committedAmountExceedsOneSubmit,
committedTransactionsExceedSubmits,
countSubmitsInWindow,
homeTxnCountsOf,
parseAccountBalance,
parseTypedAmount,
readAccountBalance,
readHomeCards,
} from "../../../examples/folio/sanderling/predicates.ts";
import type {
ObservedAction,
TxnCount,
} from "../../../examples/folio/sanderling/predicates.ts";
// The per-account balance the ledger and the add-transaction screen both show.
// Its window closes on every frame of the transaction flow, where the Home
// total's closes only when the walk goes back to Home: the iOS run in #78 went
// 117 steps between two Home readings and accumulated 37 submits against a rise
// of 15, so the double tap at step 32 sat in a window far too wide to judge.
const submit: ObservedAction = {
kind: "Tap",
on: "testTag:AddTransactionScreen > testTag:TxnSubmit",
applied: true,
};
const doubleSubmit: ObservedAction = { ...submit, kind: "DoubleTap" };
const openLedger: ObservedAction = {
kind: "Tap",
on: "testTag:HomeScreen > testTag:AccountCard",
applied: true,
};
const openAddTxn: ObservedAction = {
kind: "Tap",
on: "testTag:LedgerScreen > testTag:AddTransactionButton",
applied: true,
};
const typeAmount: ObservedAction = {
kind: "InputText",
on: "testTag:AddTransactionScreen > testTag:TxnAmountField",
applied: true,
};
const goBack: ObservedAction = { kind: "Tap", on: "testTag:BackButton", applied: true };
test("the ledger writes the balance bare and the add-transaction header labels it", () => {
assert.equal(parseAccountBalance("$196.00"), 19600);
assert.equal(parseAccountBalance("Balance: $196.00"), 19600);
assert.equal(parseAccountBalance("-$1,234.56"), -123456);
assert.equal(parseAccountBalance("Balance: -$1,234.56"), -123456);
assert.equal(parseAccountBalance("$0.00"), 0);
});
test("a balance that is not a complete amount is unknown, not zero", () => {
assert.equal(parseAccountBalance(undefined), null);
assert.equal(parseAccountBalance(""), null);
assert.equal(parseAccountBalance("Balance:"), null);
assert.equal(parseAccountBalance("$1,23.00"), null);
});
// Which account these numbers belong to is never asked, because inside a run of
// these two routes it cannot change: Route.Ledger is pushed only by tapping a
// card on Home, Route.AddTransaction only by the ledger's own button for its
// own account, and an accepted submit pops back to that same ledger. Reaching
// another account means passing through Home, so every frame that is not one of
// the two routes drops the carrier.
test("a frame off the account's own screens drops the carrier", () => {
for (const route of ["home", "login", "add-account", null]) {
assert.deepEqual(
readAccountBalance({ route, balanceText: "$196.00", previousCarrier: 10000 }),
{ value: null, carrier: null, fresh: false },
`route ${route} kept a carrier that may belong to another account`,
);
}
});
test("a readable balance on either of the two screens closes the window", () => {
assert.deepEqual(
readAccountBalance({ route: "ledger", balanceText: "$196.00", previousCarrier: 10000 }),
{ value: 19600, carrier: 19600, fresh: true },
);
assert.deepEqual(
readAccountBalance({
route: "add-transaction",
balanceText: "Balance: $196.00",
previousCarrier: 10000,
}),
{ value: 19600, carrier: 19600, fresh: true },
);
});
// The balance node scrolled out of the viewport is unknown, not a new value.
// The account still cannot have changed, so the carrier survives and the window
// stays open across the frame.
test("an unreadable balance keeps the carrier and does not close the window", () => {
assert.deepEqual(
readAccountBalance({ route: "ledger", balanceText: undefined, previousCarrier: 10000 }),
{ value: 10000, carrier: 10000, fresh: false },
);
});
test("a double submit moves the account balance by twice what was typed", () => {
assert.equal(
committedAmountExceedsOneSubmit({
route: "ledger",
lastAction: doubleSubmit,
submitsInWindow: 1,
typedAmount: 19600,
prevAccountBalance: 10000,
currAccountBalance: 49200,
}),
true,
);
});
test("a double-submitted debit is caught by the same bound", () => {
assert.equal(
committedAmountExceedsOneSubmit({
route: "ledger",
lastAction: doubleSubmit,
submitsInWindow: 1,
typedAmount: 19600,
prevAccountBalance: 10000,
currAccountBalance: -29200,
}),
true,
);
});
test("one submit moving the balance by exactly the typed amount is the app working", () => {
for (const after of [29600, -9600]) {
assert.equal(
committedAmountExceedsOneSubmit({
route: "ledger",
lastAction: submit,
submitsInWindow: 1,
typedAmount: 19600,
prevAccountBalance: 10000,
currAccountBalance: after,
}),
false,
);
}
});
// A balance that has not moved is a commit still in flight (createTransaction
// runs in a coroutine), a submit the app rejected, or a tap that never landed.
// None of those is evidence, and an equality would convict all three.
test("a balance that has not moved yet is not evidence", () => {
assert.equal(
committedAmountExceedsOneSubmit({
route: "ledger",
lastAction: submit,
submitsInWindow: 1,
typedAmount: 19600,
prevAccountBalance: 10000,
currAccountBalance: 10000,
}),
false,
);
});
test("a window holding anything other than one submit is not attributable", () => {
for (const submitsInWindow of [0, 2, 37]) {
assert.equal(
committedAmountExceedsOneSubmit({
route: "ledger",
lastAction: submit,
submitsInWindow,
typedAmount: 19600,
prevAccountBalance: 10000,
currAccountBalance: 49200,
}),
false,
);
}
});
test("an amount this reading cannot represent is vacuous, not a violation", () => {
assert.equal(
committedAmountExceedsOneSubmit({
route: "ledger",
lastAction: submit,
submitsInWindow: 1,
typedAmount: parseTypedAmount("not an amount"),
prevAccountBalance: 10000,
currAccountBalance: 49200,
}),
false,
);
assert.equal(
committedAmountExceedsOneSubmit({
route: "ledger",
lastAction: submit,
submitsInWindow: 1,
typedAmount: Number.MAX_SAFE_INTEGER + 2,
prevAccountBalance: 10000,
currAccountBalance: 49200,
}),
false,
);
});
test("a balance too large to hold exactly is not compared", () => {
assert.equal(
committedAmountExceedsOneSubmit({
route: "ledger",
lastAction: submit,
submitsInWindow: 1,
typedAmount: 19600,
prevAccountBalance: Number.MAX_SAFE_INTEGER + 2,
currAccountBalance: 0,
}),
false,
);
assert.equal(
committedAmountExceedsOneSubmit({
route: "ledger",
lastAction: submit,
submitsInWindow: 1,
typedAmount: 19600,
prevAccountBalance: 0,
currAccountBalance: Number.MAX_SAFE_INTEGER + 2,
}),
false,
);
});
test("an unknown balance on either side is not evidence", () => {
assert.equal(
committedAmountExceedsOneSubmit({
route: "ledger",
lastAction: submit,
submitsInWindow: 1,
typedAmount: 19600,
prevAccountBalance: null,
currAccountBalance: 49200,
}),
false,
);
assert.equal(
committedAmountExceedsOneSubmit({
route: "ledger",
lastAction: submit,
submitsInWindow: 1,
typedAmount: 19600,
prevAccountBalance: 10000,
currAccountBalance: null,
}),
false,
);
});
test("a step whose action was not a submit attributes nothing", () => {
for (const lastAction of [openLedger, openAddTxn, typeAmount, goBack, null]) {
assert.equal(
committedAmountExceedsOneSubmit({
route: "ledger",
lastAction,
submitsInWindow: 1,
typedAmount: 19600,
prevAccountBalance: 10000,
currAccountBalance: 49200,
}),
false,
);
}
});
test("Home shows every account's money, so it is not this comparison's scale", () => {
for (const route of ["home", "login", "add-account", null]) {
assert.equal(
committedAmountExceedsOneSubmit({
route,
lastAction: doubleSubmit,
submitsInWindow: 1,
typedAmount: 19600,
prevAccountBalance: 10000,
currAccountBalance: 49200,
}),
false,
);
}
});
// A step of the walk: the frame it landed on, the balance node that frame
// carried, what was in the amount field the step before, and the action that
// got there. Driven through the same carrier and window the spec holds.
interface Frame {
route: string | null;
balanceText?: string;
typed?: string;
lastAction: ObservedAction | null;
}
function walk(frames: readonly Frame[]) {
let carrier: number | null = null;
let submits = 0;
const verdicts: { violated: boolean; balance: number | null; submits: number }[] = [];
let previous: number | null = null;
let typedBefore = "";
for (const frame of frames) {
const reading = readAccountBalance({
route: frame.route,
balanceText: frame.balanceText,
previousCarrier: carrier,
});
carrier = reading.carrier;
const window = countSubmitsInWindow({
previousCount: submits,
lastAction: frame.lastAction,
fresh: reading.fresh,
});
submits = window.next;
verdicts.push({
violated: committedAmountExceedsOneSubmit({
route: frame.route,
lastAction: frame.lastAction,
submitsInWindow: window.reported,
typedAmount: parseTypedAmount(typedBefore),
prevAccountBalance: previous,
currAccountBalance: reading.value,
}),
balance: reading.value,
submits: window.reported,
});
previous = reading.value;
typedBefore = frame.typed ?? "";
}
return verdicts;
}
// The trajectory of #78: open an account, open the transaction form, type,
// double tap. Not one frame of it is Home, so the Home readings the counting
// invariant compares never advance and it has nothing to say about any of it.
// This is what a 117-step stretch of that run looked like, and it is why the
// double tap at step 32 went unconvicted.
test("the Home window cannot judge a walk that never goes Home", () => {
const cards = [{ name: "Checking", balance: 10000, count: 3 as TxnCount }];
let carrier: Record<string, TxnCount> | null = homeTxnCountsOf(cards);
let submits = 0;
for (const lastAction of [openLedger, openAddTxn, typeAmount, doubleSubmit]) {
const reading = readHomeCards({ route: "ledger", reading: null, previousCarrier: carrier });
const previous = carrier;
carrier = reading.carrier;
const window = countSubmitsInWindow({ previousCount: submits, lastAction, fresh: reading.fresh });
submits = window.next;
assert.equal(
committedTransactionsExceedSubmits({
countsBefore: previous,
countsAfter: reading.value,
submitsInWindow: window.reported,
}),
false,
);
}
});
// The same trajectory, judged where the app actually is. The frame the double
// tap lands on is the account's own ledger, so the window that closes there
// holds exactly the one action.
test("the double tap is convicted on the frame it lands on", () => {
const verdicts = walk([
{ route: "ledger", balanceText: "$100.00", lastAction: openLedger },
{ route: "add-transaction", balanceText: "Balance: $100.00", lastAction: openAddTxn },
{ route: "add-transaction", balanceText: "Balance: $100.00", typed: "196", lastAction: typeAmount },
{ route: "ledger", balanceText: "$492.00", lastAction: doubleSubmit },
]);
assert.deepEqual(
verdicts.map(v => v.violated),
[false, false, false, true],
);
assert.equal(verdicts[3]?.submits, 1);
});
test("the same walk with one transaction committed is silent throughout", () => {
const verdicts = walk([
{ route: "ledger", balanceText: "$100.00", lastAction: openLedger },
{ route: "add-transaction", balanceText: "Balance: $100.00", lastAction: openAddTxn },
{ route: "add-transaction", balanceText: "Balance: $100.00", typed: "196", lastAction: typeAmount },
{ route: "ledger", balanceText: "$296.00", lastAction: submit },
{ route: "add-transaction", balanceText: "Balance: $296.00", lastAction: openAddTxn },
{ route: "add-transaction", balanceText: "Balance: $296.00", typed: "50", lastAction: typeAmount },
{ route: "ledger", balanceText: "$346.00", lastAction: submit },
]);
assert.deepEqual(
verdicts.map(v => v.violated),
[false, false, false, false, false, false, false],
);
});
// The reading a healthy app must survive: transactions arriving between two
// readings that the window can no longer attribute to one action. The balance
// node is off the viewport for a stretch, so the two numbers the property would
// compare straddle two commits, and the balance moves by 296.00 against a typed
// 50.00. Two submits in the window is not one, so there is nothing to judge.
test("transactions arriving between two readings do not convict a healthy app", () => {
const verdicts = walk([
{ route: "ledger", balanceText: "$100.00", lastAction: openLedger },
{ route: "add-transaction", lastAction: openAddTxn },
{ route: "add-transaction", typed: "196", lastAction: typeAmount },
{ route: "ledger", lastAction: submit },
{ route: "add-transaction", lastAction: openAddTxn },
{ route: "add-transaction", typed: "100", lastAction: typeAmount },
{ route: "ledger", balanceText: "$396.00", lastAction: submit },
]);
assert.deepEqual(
verdicts.map(v => v.violated),
[false, false, false, false, false, false, false],
);
assert.equal(verdicts[6]?.submits, 2);
assert.equal(verdicts[6]?.balance, 39600);
});
// Attribution across accounts, which is the whole reason the carrier is dropped
// rather than carried. A $500.00 account is left behind for an empty one whose
// screens have not drawn their balance yet, and the submit into the new account
// lands with exactly one submit in the window: every gate this property has is
// open, and only the dropped carrier keeps it quiet. Carrying $500.00 across
// that frame reads as 30400 committed against 19600 typed, on an app that did
// nothing wrong.
test("a ledger opened for another account never inherits the old balance", () => {
for (const between of ["home", null]) {
const verdicts = walk([
{ route: "ledger", balanceText: "$500.00", lastAction: openAddTxn },
{ route: between, lastAction: goBack },
{ route: "ledger", lastAction: openLedger },
{ route: "add-transaction", typed: "196", lastAction: openAddTxn },
{ route: "ledger", balanceText: "$196.00", lastAction: submit },
]);
assert.deepEqual(
verdicts.map(v => v.violated),
[false, false, false, false, false],
`an account switch through ${between} was compared across accounts`,
);
assert.equal(verdicts[4]?.submits, 1);
assert.equal(verdicts[4]?.balance, 19600);
}
});
+123 -5
View File
@@ -1,7 +1,10 @@
import assert from "node:assert/strict";
import { test } from "node:test";
import { createdAccountHasNonZeroBalance } from "../../../examples/folio/sanderling/predicates.ts";
import {
createdAccountHasNonZeroBalance,
initialsOf,
} from "../../../examples/folio/sanderling/predicates.ts";
const created = {
kind: "Tap",
@@ -209,9 +212,90 @@ test("the merged web key still matches the name that was typed", () => {
);
});
// Two cards answering to one typed name leave the appearance unattributable:
// the fuzzer creates duplicates from a five-name list, and the tree has been
// seen exposing the same card twice on a transition frame.
// The avatar the merged web key opens with, hand-computed off Format.kt rather
// than off the mirror, because a mirror checked against itself checks nothing.
// A single word gives its first two characters, several give the first letter
// of the first and of the last, and an empty name gives "?".
test("the initials a merged key opens with are the app's", () => {
const named: [string, string][] = [
["CH", "Checking"],
["SA", "Savings"],
["TR", "Travel"],
["EF", "Emergency Fund"],
["IN", "Investments"],
["FU", "Fund"],
["T2", "Travel 2024"],
["A", "a"],
["X9", "x9"],
["-1", "-1"],
["?", ""],
["?", " "],
];
for (const [initials, name] of named) {
assert.equal(initialsOf(name), initials, `initials for ${JSON.stringify(name)}`);
}
});
// The attribution used to be a suffix test, and a suffix test hands the verdict
// to whichever OTHER account happens to end with the typed name. Home lists
// what fits the viewport, so the card that was just created is clipped out of
// the reading exactly as easily as any other, and the older account left in it
// is then judged for money it has held all along.
test("an older account whose name ends with the typed one is not the created one", () => {
assert.equal(
createdAccountHasNonZeroBalance({
route: "home",
lastAction: created,
typedName: "Fund",
before: [account("Checking", 0)],
after: [account("Checking", 0), account("Emergency Fund", 461012300)],
}),
false,
);
});
test("the merged web key is matched whole too, not by its ending", () => {
assert.equal(
createdAccountHasNonZeroBalance({
route: "home",
lastAction: created,
typedName: "Fund",
before: [account("CHChecking", 0)],
after: [account("CHChecking", 0), account("EFEmergency Fund", 461012300)],
}),
false,
);
});
// The card that was actually asked for is still judged, standing next to the
// account that merely ends with its name.
test("the created card is judged beside an account whose name ends with it", () => {
assert.equal(
createdAccountHasNonZeroBalance({
route: "home",
lastAction: created,
typedName: "Fund",
before: [account("Emergency Fund", 461012300)],
after: [account("Emergency Fund", 461012300), account("Fund", 5000)],
}),
true,
);
assert.equal(
createdAccountHasNonZeroBalance({
route: "home",
lastAction: created,
typedName: "Fund",
before: [account("EFEmergency Fund", 461012300)],
after: [account("EFEmergency Fund", 461012300), account("FUFund", 5000)],
}),
true,
);
});
// Two cards answering to one typed name leave the appearance unattributable.
// Accounts.name is UNIQUE and Repository.createAccount rejects a name already
// taken, so the pair is one card the tree exposed twice on a transition frame,
// or two names the merged web key cannot tell apart.
test("two cards matching the typed name are not attributable to the creation", () => {
assert.equal(
createdAccountHasNonZeroBalance({
@@ -219,7 +303,7 @@ test("two cards matching the typed name are not attributable to the creation", (
lastAction: created,
typedName: "Travel",
before: [account("Checking", 0)],
after: [account("Checking", 0), account("Travel", 5000), account("MyTravel", 900)],
after: [account("Checking", 0), account("Travel", 5000), account("Travel", 900)],
}),
false,
);
@@ -238,6 +322,40 @@ test("a card that was already there is not a card that was just created", () =>
);
});
// The runner's foreground guard restarted the app after the create. A fresh
// launch draws Home from the top, so the visible set is whatever the new layout
// fits rather than what was there a step ago, and "appeared in the reading" is
// even less like "was created" than usual. The process may also have died
// before the write landed, which makes the card that carries the typed name an
// older account of that name coming into view.
test("a create the runner relaunched across attributes nothing", () => {
assert.equal(
createdAccountHasNonZeroBalance({
route: "home",
lastAction: { ...created, relaunched: true },
typedName: "Travel",
before: [account("Checking", 0)],
after: [account("Checking", 0), account("Travel", 5000)],
}),
false,
);
});
test("no relaunch reported still judges the account that was created", () => {
for (const relaunched of [null, undefined]) {
assert.equal(
createdAccountHasNonZeroBalance({
route: "home",
lastAction: { ...created, relaunched },
typedName: "Travel",
before: [account("Checking", 0)],
after: [account("Checking", 0), account("Travel", 5000)],
}),
true,
);
}
});
// The apply call failed with the gesture possibly already delivered, so nobody
// knows whether that account was created. The card carrying the typed name may
// be an older one that scrolled into view, and attributing it to a creation
@@ -520,3 +520,41 @@ test("a submit the runner could not confirm demands no balance move", () => {
true,
);
});
// relaunched: true is the runner saying its foreground guard restarted the app
// after this action. The tap landed, so the window still counts it, but nobody
// can promise the process lived long enough for the write to reach sqlite. A
// balance still sitting where it was is exactly what a healthy app looks like
// across a relaunch, and demanding the typed amount of movement convicts it for
// the runner's own restart.
test("a submit the runner relaunched across demands no balance move", () => {
assert.equal(
submitChangesBalanceByTypedAmount({
route: "home",
lastAction: { kind: "Tap", on: submitOn, applied: true, relaunched: true },
submitsInWindow: 1,
typedAmount: 500,
prevTotalBalance: 1000,
currTotalBalance: 1000,
}),
true,
);
});
// The guard must not become a way of switching the property off. No relaunch
// reported is the ordinary case, and web and iOS cannot report one at all.
test("no relaunch reported still convicts a double submit", () => {
for (const relaunched of [null, undefined]) {
assert.equal(
submitChangesBalanceByTypedAmount({
route: "home",
lastAction: { kind: "DoubleTap", on: submitOn, applied: true, relaunched },
submitsInWindow: 1,
typedAmount: 500,
prevTotalBalance: 1000,
currTotalBalance: 2000,
}),
false,
);
}
});
+90
View File
@@ -67,6 +67,96 @@ test("a second submit with no Home reading between them counts two", () => {
);
});
// The window is a budget: an upper bound on the transactions the interval could
// hold. A tap the app's own parser must have refused spends none of it, and on
// android it does not even reach the parser, because TxnSubmit is
// clickable(enabled = amount.isNotBlank()). Measured over four recorded android
// runs, 19, 11, 25 and 25 of 35, 26, 42 and 42 submit taps landed on the
// transaction screen with the amount field empty, so more than half the budget
// was being spent on taps that cannot commit anything.
test("a submit the app must have refused does not spend the window's budget", () => {
for (const amountText of ["", " ", "0", "0.00", "00", "5.", "abc"]) {
assert.deepEqual(
countSubmitsInWindow({
previousCount: 0,
lastAction: { kind: "Tap", on: submitOn },
amountText,
fresh: false,
}),
{ reported: 0, next: 0 },
`amount ${JSON.stringify(amountText)} was counted as a possible commit`,
);
}
});
// The field as the landing frame shows it, which is the form state the tap read:
// nothing between the two changes it. Anywhere but the transaction screen there
// is no field to read, and unknown has to count.
test("an amount that could commit, or that nobody could read, spends the budget", () => {
for (const amountText of ["5", "0.01", "1,000", "999999999999999999999", undefined]) {
assert.deepEqual(
countSubmitsInWindow({
previousCount: 0,
lastAction: { kind: "Tap", on: submitOn },
amountText,
fresh: false,
}),
{ reported: 1, next: 1 },
`amount ${JSON.stringify(amountText)} was dropped from the budget`,
);
}
});
// The one thing that can put a different form state on screen than the one the
// tap read: the runner restarting the app, which the tap survives and the typed
// amount does not. The field a fresh process draws is empty whatever was
// submitted, so it proves nothing and the submit keeps its place in the budget.
test("a submit across a relaunch spends the budget whatever the field shows", () => {
assert.deepEqual(
countSubmitsInWindow({
previousCount: 0,
lastAction: { kind: "Tap", on: submitOn, applied: true, relaunched: true },
amountText: "",
fresh: false,
}),
{ reported: 1, next: 1 },
);
});
// What the budget costs the counting invariant, in the shape of the iOS run in
// #78: a stretch of the walk that never went Home, most of it taps on a submit
// button with nothing typed into the form, and one double tap that committed
// twice. Counting the refused taps hands the app five transactions of slack it
// never used, and two rows against six actions is no violation.
test("refused submits used to hide a double submit behind their own budget", () => {
const frames = [
{ amountText: "", lastAction: { kind: "Tap", on: submitOn } },
{ amountText: "", lastAction: { kind: "Tap", on: submitOn } },
{ amountText: "", lastAction: { kind: "Tap", on: submitOn } },
{ amountText: "", lastAction: { kind: "Tap", on: submitOn } },
{ amountText: "", lastAction: { kind: "Tap", on: submitOn } },
{ amountText: undefined, lastAction: { kind: "DoubleTap", on: submitOn } },
];
let budget = 0;
for (const frame of frames) {
budget = countSubmitsInWindow({
previousCount: budget,
lastAction: frame.lastAction,
amountText: frame.amountText,
fresh: false,
}).next;
}
assert.equal(budget, 1);
assert.equal(
committedTransactionsExceedSubmits({
countsBefore: { Checking: 3 },
countsAfter: { Checking: 5 },
submitsInWindow: budget,
}),
true,
);
});
// The two traces the freshness rule exists to tell apart, driven step by step
// through the same pair of carriers the spec holds.
function run(steps: { route: string | null; totalText?: string; lastAction: unknown }[]) {
+213 -24
View File
@@ -1,8 +1,21 @@
// A minimal stand-in for the DOM surface the web host reads, shared by the web
// runtime's own tests and the cross-host eligibility test. The host asks the
// document for three things -- every element, the tappable set, the editable set
// -- and reads geometry, `disabled` and the scroll extents off each element, so
// that is all a fake has to answer.
// A small DOM the web runtime can be driven over, shared by the web runtime's
// own tests and the cross-host eligibility test.
//
// It is a fake, but the structure is real: elements nest, a host owns a shadow
// root, and querySelectorAll WALKS the tree and stops at a shadow boundary
// exactly as the browser's does. That is what makes the shadow descent in
// deepQueryAll and expandShadowContent (src/web-runtime.ts) observable here at
// all; the previous harness answered three fixed selectors from a flat list, so
// deleting either descent changed no test result.
//
// What it fabricates is layout: getBoundingClientRect, scrollHeight and
// clientHeight are handed over from the spec. No headless DOM computes those,
// and they are precisely the facts collectTargets reads, so a real DOM
// implementation would have to be stubbed for them anyway.
//
// An unsupported selector throws rather than matching nothing, so a test whose
// selector this cannot parse fails loudly instead of quietly asserting over an
// empty list.
import { __testing__ } from "../src/web-runtime.ts";
@@ -23,23 +36,45 @@ export interface FakeElementSpec {
label?: string;
alt?: string;
title?: string;
// clickable/editable place the element in the selector sets the host queries;
// the fake answers those queries directly rather than matching CSS.
// text is what an ax element handle reports as `text`, the same field the
// goja host reads off a hierarchy node, so a test can name WHICH of two
// same-id elements a lookup resolved to.
text?: string;
attrs?: Record<string, string>;
// clickable/editable place the element in the two fact sets the host queries
// by selector. They are answered from these flags rather than by matching
// their CSS: the cross-host golden (fixtures/host-parity-golden.json, built
// row for row in internal/verifier/host_parity_test.go) pins fact
// combinations no CSS can produce, such as an <input> that is editable and
// not clickable. A test states the facts there; this harness reports them.
clickable?: boolean;
editable?: boolean;
disabled?: boolean;
// overflows makes the element's content taller than its box, which is how the
// host decides an element is scrollable.
overflows?: boolean;
children?: FakeElementSpec[];
shadow?: FakeElementSpec[];
}
export interface FakeElement extends FakeElementSpec {
export interface FakeRoot {
children: FakeElement[];
querySelectorAll(selector: string): FakeElement[];
}
export interface FakeElement extends Omit<FakeElementSpec, "children" | "shadow"> {
tagName: string;
type: string;
isContentEditable: boolean;
id: string;
className: string;
textContent: string;
dataset: Record<string, string | undefined>;
parentElement: FakeElement | null;
children: FakeElement[];
shadowRoot: FakeRoot | null;
getAttribute(name: string): string | null;
querySelectorAll(selector: string): FakeElement[];
scrollHeight: number;
clientHeight: number;
scrollWidth: number;
@@ -56,15 +91,26 @@ export interface FakeElement extends FakeElementSpec {
export function fakeElement(spec: FakeElementSpec): FakeElement {
const editable = spec.editable ?? false;
return {
const attributes: Record<string, string> = { ...spec.attrs };
if (spec.id !== undefined) attributes.id = spec.id;
if (spec.testid !== undefined) attributes["data-testid"] = spec.testid;
if (spec.label !== undefined) attributes["aria-label"] = spec.label;
if (spec.alt !== undefined) attributes.alt = spec.alt;
if (spec.title !== undefined) attributes.title = spec.title;
const element: FakeElement = {
...spec,
tagName: spec.tag.toUpperCase(),
type: spec.tag === "input" ? "text" : "",
isContentEditable: editable && spec.tag !== "input" && spec.tag !== "textarea",
id: spec.id ?? "",
className: attributes.class ?? "",
textContent: spec.text ?? "",
dataset: { testid: spec.testid },
getAttribute: (name: string) =>
({ "aria-label": spec.label, alt: spec.alt, title: spec.title })[name] ?? null,
parentElement: null,
children: (spec.children ?? []).map(fakeElement),
shadowRoot: null,
getAttribute: (name: string) => attributes[name] ?? null,
querySelectorAll: (selector: string) => queryScope(element, selector),
scrollHeight: spec.overflows ? spec.height * 2 : spec.height,
clientHeight: spec.height,
scrollWidth: spec.width,
@@ -78,27 +124,170 @@ export function fakeElement(spec: FakeElementSpec): FakeElement {
bottom: spec.y + spec.height,
}),
};
for (const child of element.children) child.parentElement = element;
if (spec.shadow) element.shadowRoot = fakeRoot(spec.shadow.map(fakeElement));
return element;
}
// withFakeDocument installs a document answering the host's three queries over
// `elements`, resets the host's per-tick cache, and restores the real document
// afterwards.
// A shadow root's children have no parentElement, as in a real DOM, so a
// descendant selector cannot reach across the boundary from either side.
function fakeRoot(children: FakeElement[]): FakeRoot {
const root: FakeRoot = {
children,
querySelectorAll: (selector: string) => queryScope(root, selector),
};
return root;
}
function queryScope(scope: { children: FakeElement[] }, selector: string): FakeElement[] {
const found: FakeElement[] = [];
const walk = (nodes: FakeElement[]): void => {
for (const node of nodes) {
if (matchesQuery(node, selector)) found.push(node);
walk(node.children);
}
};
walk(scope.children);
return found;
}
function matchesQuery(element: FakeElement, selector: string): boolean {
if (selector === TAPPABLE_SELECTOR) return element.clickable === true;
if (selector === EDITABLE_SELECTOR) return element.editable === true;
return matchesSelectorList(element, selector);
}
function matchesSelectorList(element: FakeElement, selector: string): boolean {
return splitTopLevel(selector, ",").some((complex) => matchesComplex(element, complex));
}
function matchesComplex(element: FakeElement, complex: string): boolean {
const compounds = splitTopLevel(complex, " ");
const subject = compounds.pop();
if (subject === undefined) return false;
if (!matchesCompound(element, subject)) return false;
let ancestor = element.parentElement;
for (const compound of compounds.reverse()) {
while (ancestor && !matchesCompound(ancestor, compound)) ancestor = ancestor.parentElement;
if (!ancestor) return false;
ancestor = ancestor.parentElement;
}
return true;
}
const TAG_NAME = /^[a-zA-Z][a-zA-Z0-9-]*/;
const ATTRIBUTE = /^([a-zA-Z][\w-]*)(?:([~^]?)=(.+))?$/;
function matchesCompound(element: FakeElement, compound: string): boolean {
let rest = compound;
while (rest.length > 0) {
if (rest.startsWith("*")) {
rest = rest.slice(1);
continue;
}
if (rest.startsWith("[")) {
const end = closingIndex(rest, "[", "]");
if (!matchesAttribute(element, rest.slice(1, end))) return false;
rest = rest.slice(end + 1);
continue;
}
if (rest.startsWith(":is(") || rest.startsWith(":not(")) {
const end = closingIndex(rest, "(", ")");
const inner = rest.slice(rest.indexOf("(") + 1, end);
const anyMatched = splitTopLevel(inner, ",").some((part) =>
matchesSelectorList(element, part),
);
if (rest.startsWith(":is(") ? !anyMatched : anyMatched) return false;
rest = rest.slice(end + 1);
continue;
}
const tag = TAG_NAME.exec(rest);
if (!tag) throw new Error(`web-dom-harness cannot parse selector ${JSON.stringify(compound)}`);
if (element.tagName !== tag[0].toUpperCase()) return false;
rest = rest.slice(tag[0].length);
}
return true;
}
function matchesAttribute(element: FakeElement, body: string): boolean {
const parsed = ATTRIBUTE.exec(body);
if (!parsed) throw new Error(`web-dom-harness cannot parse attribute [${body}]`);
const [, name, operator, quoted] = parsed;
const actual = element.getAttribute(name!);
if (actual === null) return false;
if (quoted === undefined) return true;
const value = unescapeCss(quoted.replace(/^"(.*)"$/, "$1").replace(/^'(.*)'$/, "$1"));
if (operator === "~") return actual.split(/\s+/).includes(value);
if (operator === "^") return actual.startsWith(value);
return actual === value;
}
// Selector values reach the harness escaped by CSS.escape, so `[id="1a"]`
// arrives as `[id="\31 a"]` and comparing it raw would never match.
function unescapeCss(value: string): string {
return value.replace(/\\([0-9a-fA-F]{1,6}) ?|\\(.)/g, (_, hex: string, literal: string) =>
hex ? String.fromCodePoint(parseInt(hex, 16)) : literal,
);
}
function closingIndex(input: string, open: string, close: string): number {
let depth = 0;
let quote = "";
for (let index = input.indexOf(open); index < input.length; index++) {
const character = input[index]!;
if (quote) {
if (character === quote) quote = "";
continue;
}
if (character === '"' || character === "'") quote = character;
else if (character === open) depth++;
else if (character === close && --depth === 0) return index;
}
throw new Error(`web-dom-harness cannot parse selector ${JSON.stringify(input)}`);
}
function splitTopLevel(input: string, separator: string): string[] {
const parts: string[] = [];
let current = "";
let depth = 0;
let quote = "";
for (const character of input) {
if (quote) {
current += character;
if (character === quote) quote = "";
continue;
}
if (character === '"' || character === "'") quote = character;
else if (character === "(" || character === "[") depth++;
else if (character === ")" || character === "]") depth--;
else if (depth === 0 && (character === separator || (separator === " " && /\s/.test(character)))) {
parts.push(current);
current = "";
continue;
}
current += character;
}
parts.push(current);
return parts.map((part) => part.trim()).filter((part) => part.length > 0);
}
// withFakeDocument installs a document whose top-level children are `elements`,
// resets the host's per-tick cache, and restores the real globals afterwards.
// window goes in alongside document because buildState reads both, so an
// extractor reaching state.ax needs it.
export function withFakeDocument(elements: FakeElement[], run: () => void): void {
const global = globalThis as Record<string, unknown>;
const original = global.document;
const answers: Record<string, FakeElement[]> = {
"*": elements,
[TAPPABLE_SELECTOR]: elements.filter((element) => element.clickable),
[EDITABLE_SELECTOR]: elements.filter((element) => element.editable),
};
global.document = {
querySelectorAll: (selector: string) => answers[selector] ?? [],
};
const originalDocument = global.document;
const originalWindow = global.window;
const document: FakeRoot = fakeRoot(elements);
global.document = document;
global.window = {};
__testing__.resetTargetCache();
try {
run();
} finally {
__testing__.resetTargetCache();
global.document = original;
global.document = originalDocument;
global.window = originalWindow;
}
}
+129 -45
View File
@@ -84,6 +84,7 @@ test("installRuntime defined the host-invoked globals", () => {
});
const { fakeElement, withFakeDocument } = await import("./web-dom-harness.ts");
type FakeElementSpec = Parameters<typeof fakeElement>[0];
// The host reports facts and never routes verbs: which of these a verb may act
// on is decided by the shared rule in src/targets.ts, exercised across both
@@ -175,6 +176,55 @@ test("queryTargets leaves duplicated identities unnamed", () => {
});
});
// The enumeration ORDER is the parity contract. buildTree in
// internal/driver/chrome/driver.go emits a host's shadow children before its
// light ones, and TestHierarchy_DerivesTheSameFactsAsTheWebRuntime compares the
// two enumerations position by position.
test("queryTargets splices shadow content in before the host's light children", () => {
const page = fakeElement({
tag: "div", x: 0, y: 0, width: 400, height: 800, id: "page",
children: [
{
tag: "div", x: 0, y: 0, width: 400, height: 100, id: "mount",
shadow: [
{ tag: "button", x: 0, y: 0, width: 40, height: 20, id: "shadow-save", clickable: true },
],
children: [{ tag: "div", x: 0, y: 20, width: 40, height: 20, id: "mount-light-child" }],
},
{ tag: "div", x: 0, y: 100, width: 400, height: 100, id: "after" },
],
});
withFakeDocument([page], () => {
assert.deepEqual(
host.queryTargets().map((target) => target.selector),
["id:page", "id:mount", "id:shadow-save", "id:mount-light-child", "id:after"],
);
});
});
// The tappable set is resolved by selector, and querySelectorAll stops dead at
// a shadow boundary, so a control inside a shadow root carries the clickable
// fact only if the selector sweep descends. A Compose for Web app keeps every
// control it has on the far side of one boundary.
test("queryTargets reports a shadow-hosted control as clickable", () => {
const mount = fakeElement({
tag: "div", x: 0, y: 0, width: 400, height: 100, id: "mount",
shadow: [
{ tag: "button", x: 0, y: 0, width: 40, height: 20, id: "shadow-save", clickable: true },
{ tag: "input", x: 0, y: 20, width: 40, height: 20, id: "shadow-amount", editable: true },
],
});
withFakeDocument([mount], () => {
const targets = host.queryTargets();
assert.deepEqual(
targets.map((target) => target.selector),
["id:mount", "id:shadow-save", "id:shadow-amount"],
);
assert.equal(targets[1]!.clickable, true);
assert.equal(targets[2]!.editable, true);
});
});
test("queryTargets caches within a tick until reset", () => {
const button = fakeElement({ tag: "button", x: 0, y: 0, width: 10, height: 10, clickable: true });
withFakeDocument([button], () => {
@@ -473,28 +523,23 @@ test("selectorTag renders the selector shapes the goja host renders", () => {
// accounts/totalBalance extractors (findAll([{HomeScreen}, {AccountCard}]))
// were empty on every web step and the properties over them checked nothing.
test("ax.findAll resolves a selector path segment by segment", () => {
const rect = { left: 0, top: 0, right: 10, bottom: 10, width: 10, height: 10 };
const node = (id: string, answers: Record<string, unknown[]> = {}) => ({
id,
tagName: "DIV",
className: "",
textContent: id,
dataset: {},
getAttribute: () => null,
getBoundingClientRect: () => rect,
querySelectorAll: (selector: string) => answers[selector] ?? [],
const card = (id: string, y: number): FakeElementSpec => ({
tag: "div", x: 0, y, width: 10, height: 10, testid: "AccountCard", text: id,
});
// The stray card is outside HomeScreen, so a document-wide sweep for the
// second segment picks it up and the scoping assertion below fails.
const page = fakeElement({
tag: "div", x: 0, y: 0, width: 100, height: 100,
children: [
{
tag: "div", x: 0, y: 0, width: 100, height: 50, testid: "HomeScreen",
children: [card("first", 0), card("second", 10)],
},
card("stray", 60),
],
});
const cardCss = `:is([data-testid="AccountCard"], [id="AccountCard"])`;
const screenCss = `:is([data-testid="HomeScreen"], [id="HomeScreen"])`;
const cards = [node("first"), node("second")];
const home = node("HomeScreen", { [cardCss]: cards });
const g = globalThis as Record<string, unknown>;
const originalDocument = g.document;
const originalWindow = g.window;
g.document = { querySelectorAll: (selector: string) => (selector === screenCss ? [home] : []) };
g.window = {};
try {
withFakeDocument([page], () => {
__testing__.extractors.length = 0;
__testing__.runtime.extract((state) => {
const ax = (state as { ax: { findAll(s: unknown): Record<string, unknown>[] } }).ax;
@@ -506,30 +551,14 @@ test("ax.findAll resolves a selector path segment by segment", () => {
// Scoped to the head match: the cards come from the HomeScreen node, not
// from a document-wide sweep for AccountCard.
assert.deepEqual(readingOf(values, 0), ["first", "second"]);
} finally {
g.document = originalDocument;
g.window = originalWindow;
}
});
});
test("ax.find and ax.findAll label the element with its selector", () => {
const rect = { left: 0, top: 0, right: 10, bottom: 10, width: 10, height: 10 };
const submit = {
id: "TxnSubmit",
tagName: "DIV",
className: "",
textContent: "Submit",
dataset: {},
getAttribute: () => null,
getBoundingClientRect: () => rect,
};
const matches = `:is([data-testid="TxnSubmit"], [id="TxnSubmit"])`;
const g = globalThis as Record<string, unknown>;
const originalDocument = g.document;
const originalWindow = g.window;
g.document = { querySelectorAll: (selector: string) => (selector === matches ? [submit] : []) };
g.window = {};
try {
const submit = fakeElement({
tag: "div", x: 0, y: 0, width: 10, height: 10, id: "TxnSubmit", text: "Submit",
});
withFakeDocument([submit], () => {
__testing__.extractors.length = 0;
__testing__.runtime.extract((state) => {
const ax = (state as { ax: { find(s: unknown): Record<string, unknown> | undefined } }).ax;
@@ -546,8 +575,63 @@ test("ax.find and ax.findAll label the element with its selector", () => {
// reference would hand the array INDEX to the runtime as the selector.
const all = readingOf(values, 1) as Record<string, unknown>[];
assert.equal(all[0]!.__sanderlingSelector, "testTag:TxnSubmit");
} finally {
g.document = originalDocument;
g.window = originalWindow;
}
});
});
// One page, one selector, two hosts. The goja host resolves a selector against
// the hierarchy dump, whose buildTree (internal/driver/chrome/driver.go) emits
// a host's shadow children BEFORE its light ones, so a pre-order search there
// reaches a shadow-hosted match first. deepQueryAll swept the whole light DOM
// first and only then descended, so this page answered find({id:"x"}) with the
// light node in V8 and the shadow node in goja, and on web V8's answer is the
// one that reaches the properties.
test("ax.find resolves the shadow-hosted match the hierarchy dump reaches first", () => {
const page = fakeElement({
tag: "div", x: 0, y: 0, width: 400, height: 800, id: "page",
children: [
{
tag: "div", x: 0, y: 0, width: 400, height: 100, id: "mount",
shadow: [{ tag: "span", x: 0, y: 0, width: 40, height: 20, id: "x", text: "shadow" }],
},
{ tag: "span", x: 0, y: 100, width: 40, height: 20, id: "x", text: "light" },
],
});
withFakeDocument([page], () => {
__testing__.extractors.length = 0;
__testing__.runtime.extract((state) => {
const ax = (state as { ax: { find(s: unknown): Record<string, unknown> | undefined } }).ax;
return ax.find("id:x")?.text;
});
__testing__.runtime.extract((state) => {
const ax = (state as { ax: { findAll(s: unknown): Record<string, unknown>[] } }).ax;
return ax.findAll("id:x").map((element) => element.text);
});
const values = __testing__.evaluateExtractors();
assert.equal(readingOf(values, 0), "shadow");
assert.deepEqual(readingOf(values, 1), ["shadow", "light"]);
});
});
// A nested undefined is the one reading shape the two hosts do NOT encode
// alike, and this pins the split instead of hiding it. JSON has no undefined,
// so the key goes with the value here; goja marshals the same member as null,
// and it cannot do otherwise, because an exported goja object reports undefined
// and null identically, so dropping those keys there would drop the genuine
// nulls this host keeps. Carrying the member across would take a wire format
// that can express undefined.
//
// What both hosts DO agree on is the member's value: reading it answers
// undefined either way, and that is the guarantee a property may rely on. Key
// presence (`in`, Object.keys) is not.
// TestExtractorEncoding_NestedUndefinedIsNotOnTheWire in
// internal/verifier/extractor_encoding_test.go pins the other half.
test("a nested undefined leaves the page as a dropped key, a nested null does not", () => {
__testing__.extractors.length = 0;
__testing__.runtime.extract(() => ({ absent: undefined, empty: null, present: 1 }));
let wire = "";
withState(() => {
// Exactly what extractorScript in internal/driver/chrome/driver.go sends.
wire = JSON.stringify(__testing__.evaluateExtractors());
});
assert.equal(wire, `{"0":{"value":{"empty":null,"present":1}}}`);
});
+33
View File
@@ -170,11 +170,44 @@ const switchATab = actions(() => {
return tabs.length === 0 ? [] : [Tap({ on: from(tabs).generate() })];
});
// badgeCountMatchesThePanel needs two readings on ONE step: the badge, which a
// tab strip renders only for a step that HAS a violation, and a violations
// panel to compare it against, which exists while the properties or violations
// tab is selected. Undirected actions put both on the same step 0 times in the
// 80 of the first dogfood run: the property was reachable in principle and
// judged nothing in practice.
//
// Both halves have to be aimed at. Aiming at the step alone just moved the
// misses to the other side, 0 judged either way. So this selects a step the
// list marks as violating, and once standing on one, opens a panel if none is
// up. It opens the AFTER panel's, because the before panel's screenshot is what
// screenshotShowsTheSelectedStep reads and covering that up trades one
// property's evidence for another's.
const violatingRows = extract("violatingRows", (s) =>
s.ax.findAll({ "data-testid": "step-row" }).filter((row) => dataOf(row, "violations") === "true"),
);
const afterPropertiesTabs = extract("afterPropertiesTabs", (s) =>
s.ax
.findAll([{ "data-testid": "state-after" }, { "data-testid": "tab" }])
.filter((tab) => dataOf(tab, "tabId") === "properties"),
);
const showAViolatingStepWithItsPanel = actions(() => {
const rows = violatingRows.current;
if (!rows.some((row) => dataOf(row, "active") === "true")) {
return rows.length === 0 ? [] : [Tap({ on: from(rows).generate() })];
}
if (violationPanelCounts.current.length > 0) return [];
const tabs = afterPropertiesTabs.current;
return tabs.length === 0 ? [] : [Tap({ on: from(tabs).generate() })];
});
// defaultActions carries the rest: the jump-to-violation button, the theme
// toggle, the link back to the run list, and the scrolling.
export const actionsRoot = weighted(
[30, selectAStep],
[20, navigateByKeyboard],
[25, switchATab],
[20, showAViolatingStepWithItsPanel],
[25, defaultActions],
);
+7
View File
@@ -6,8 +6,15 @@
font-family: var(--font-mono);
}
/* Wrapping is what keeps the last tabs reachable. In a narrow column the five
tabs are wider than the panel, and the overflow scrolls .detail-panel-body,
which carries that tab's own panel out of the column with it. In a 756px
viewport (what a headless run gets) Properties and Violations then sit under
the neighbouring panel, where neither a person nor the fuzzer can click
them. */
.tabs-header {
display: flex;
flex-wrap: wrap;
gap: 0;
border-bottom: 1px solid var(--border);
flex: 0 0 auto;
@@ -185,7 +185,8 @@ private val ROUTE_TAG_KEYS = setOf(
"accessibilityIdentifier",
)
private val jsonMapper = com.fasterxml.jackson.module.kotlin.jacksonObjectMapper()
private val jsonMapper =
com.fasterxml.jackson.module.kotlin.jacksonObjectMapper()
// countRouteScreens counts DISTINCT route-level destination tags, not the nodes
// carrying them. A screen that nests a node repeating its own route id puts two
@@ -328,11 +329,12 @@ internal fun readLogcat(
arguments.add(since)
}
return try {
val process = ProcessBuilder(
adbCmd(serial) + arguments,
).redirectErrorStream(false).start()
val output = process.inputStream.bufferedReader().readText()
process.waitFor()
val command = adbCmd(serial) + arguments
val output = readProcessOutput(
ProcessBuilder(command).redirectErrorStream(false).start(),
ADB_OUTPUT_TIMEOUT_MILLIS,
describe = { command.joinToString(" ") },
)
StubDriverBackend.parseLogcatOutput(output)
} catch (cause: Exception) {
println("adb logcat failed: $cause")
@@ -358,13 +360,76 @@ internal fun readProcMetrics(serial: String?, bundleId: String): MetricsSample {
private fun adbCmd(serial: String?): List<String> =
if (serial == null) listOf("adb") else listOf("adb", "-s", serial)
// ADB_OUTPUT_TIMEOUT_MILLIS bounds the diagnostic adb reads: dumpsys, logcat,
// `settings get`, /proc stats. None of them is the driver's data path, so the
// bound wants to be generous enough that it cannot fire on a link that works,
// and it is: a hierarchy fetch, far heavier than any of these, measures at a
// 76ms median and a 168ms p90 over the same remote adb link. What it caps is
// the other end, where a wedged adb once held a step ~100s.
internal const val ADB_OUTPUT_TIMEOUT_MILLIS = 10_000L
private val adbReaders: java.util.concurrent.ExecutorService =
java.util.concurrent.Executors.newCachedThreadPool { runnable ->
Thread(runnable, "adb-output").apply { isDaemon = true }
}
// readProcessOutput returns a process's stdout, or "" when it does not arrive
// inside timeoutMillis.
//
// The bound belongs on the READ, not on waitFor. readText ends at EOF, and a
// wedged adb neither writes nor exits, so EOF never comes and a waitFor with a
// timeout after it is a line that never runs. Waiting first and reading after
// is worse still: a process with more to say than a pipe buffer holds, which
// logcat and dumpsys both are, blocks writing while the waiter waits for it to
// finish, and neither ever moves.
//
// So the read runs on a daemon thread and killing the process is what releases
// it: destroy closes the pipe, the reader sees EOF, the thread ends. Returning
// "" hands every caller the answer it already treats as "adb said nothing",
// which is the safe direction for all of them.
internal fun readProcessOutput(
process: Process,
timeoutMillis: Long,
describe: () -> String,
log: (String) -> Unit = { System.err.println(it) },
): String {
val reader = adbReaders.submit<String> {
process.inputStream.bufferedReader().readText()
}
return try {
val output = reader.get(
timeoutMillis,
java.util.concurrent.TimeUnit.MILLISECONDS,
)
if (!process.waitFor(
timeoutMillis,
java.util.concurrent.TimeUnit.MILLISECONDS,
)
) {
process.destroyForcibly()
}
output
} catch (cause: java.util.concurrent.TimeoutException) {
process.destroyForcibly()
reader.cancel(true)
log(
"warn: ${describe()} gave nothing in ${timeoutMillis}ms; " +
"killed it and read no answer",
)
""
} catch (cause: Exception) {
process.destroyForcibly()
""
}
}
private fun adbOutput(serial: String?, arguments: List<String>): String = try {
val process = ProcessBuilder(
adbCmd(serial) + arguments,
).redirectErrorStream(false).start()
val output = process.inputStream.bufferedReader().readText()
process.waitFor()
output
val command = adbCmd(serial) + arguments
readProcessOutput(
ProcessBuilder(command).redirectErrorStream(false).start(),
ADB_OUTPUT_TIMEOUT_MILLIS,
describe = { command.joinToString(" ") },
)
} catch (cause: Exception) {
""
}
@@ -473,8 +538,14 @@ class StubDriverBackend(
companion object {
private const val IDLE_POLL_INTERVAL_MILLIS = 50L
// A count we could not read is not a count of zero. Defaulting it to
// zero made an unreadable dumpsys mean "nothing is animating, go
// ahead", which is the one answer the caller cannot check: it breaks
// out of the settle and snapshots whatever frame is on screen. Unknown
// keeps it waiting instead, inside the deadline waitForIdle already
// holds, and it agrees with the probe's own exception path.
internal fun isAnimationCountIdle(grepOutput: String): Boolean =
(grepOutput.trim().toIntOrNull() ?: 0) == 0
grepOutput.trim().toIntOrNull() == 0
internal fun parseResolvedActivity(
bundleId: String,
@@ -496,8 +567,8 @@ class StubDriverBackend(
when (ch) {
' ' -> sb.append("%s")
'\\', '"', '\'', '&', '|', ';', '<', '>', '(', ')', '*', '?',
'$', '`', '[', ']', '{', '}', '~', '#',
'\\', '"', '\'', '&', '|', ';', '<', '>', '(', ')', '*',
'?', '$', '`', '[', ']', '{', '}', '~', '#',
-> sb.append(
'\\',
).append(ch)
@@ -779,6 +850,210 @@ internal fun typeChunks(
return typed
}
// dismissSoftKeyboard closes an open IME, and issues nothing when none is open.
//
// The keyboard is its own window over the bottom of the app, and the hierarchy
// carries only what is visible to the user, so every app node under it is
// absent from the tree the picker enumerates targets from. Typing raises it, so
// an IME left open hides a form's submit control for as long as the fuzzer
// keeps typing into that form, which is a state it cannot type its way out of.
//
// The mInputShown guard is load-bearing rather than an optimisation: BACK is
// what closes an open IME, and BACK with no IME open navigates out of the
// screen, so an unguarded dismissal would make every InputText a back press.
//
// The flag trails the BACK it answers for, by about 0.6s on API 36, and a
// second dismissal inside that window reads the stale true and back-presses an
// IME that has already gone. What keeps that unreachable is the caller: one
// dismissal per inputText, and the runner focuses the field with a tap before
// every InputText, which raises the IME again long before this probe runs. A
// caller that dismissed twice in a row, or typed without focusing first, would
// lose that margin.
//
// treeWithoutKeyboard closes a keyboard too, on the snapshot path, and does not
// cost this one its margin: it reads no flag, and the two are a waitForIdle and
// a hierarchy fetch apart, several times the window in which this one is stale.
internal fun dismissSoftKeyboard(shell: (String) -> String) {
if (!shell("dumpsys input_method").contains("mInputShown=true")) return
shell("input keyevent 4")
}
// KEYBOARD_DISMISS_READS bounds the re-reads a snapshot spends waiting for the
// IME window to leave the tree after BACK. The window leaves over an
// animation, so the first read back can still carry it. A hierarchy read
// measures at a 76ms median and a 168ms p90 on the API 34 emulator, so with
// the interval these four reads watch most of a second: several retractions
// over, without turning a keyboard the app keeps re-raising into a wait with
// no end.
internal const val KEYBOARD_DISMISS_READS = 4
internal const val KEYBOARD_DISMISS_INTERVAL_MILLIS = 100L
// imePackageOf takes the package half of an input-method component id
// ("pkg/.Service"), the form both `settings get secure default_input_method`
// and dumpsys' mCurMethodId use. Anything that is not a package name reads as
// "no IME known", which disables the dismissal rather than guessing.
internal fun imePackageOf(component: String): String? =
component.trim().substringBefore('/')
.takeIf { it.isNotEmpty() && it.contains('.') }
// treeShowsIme reports whether the keyboard window is in the tree, by the view
// ids the IME's own resources give it ("pkg:id/name").
internal fun treeShowsIme(treeJson: String, imePackage: String): Boolean =
treeJson.contains("$imePackage:id/")
// treeWithoutKeyboard closes a keyboard standing in the snapshot and returns a
// tree read after it has gone, or the tree it was given when none is open.
//
// It belongs here, before the read the picker chooses from, rather than after
// the tap that raised the keyboard. Two reasons. The picker only ever sees
// snapshots, so a dismissal anywhere later leaves this step choosing between
// the handful of targets an open keyboard left in the tree, which is the
// budget the fuzzer was losing. And the state it has to judge is settled here:
// the action landed a waitForIdle ago, where straight after the tap the
// keyboard is still on its way up and nothing it could read would say so yet.
//
// The tree is also a better guard than mInputShown. BACK closes an open
// keyboard and navigates when none is open, so pressing it is only safe on a
// true reading; mInputShown trails the keyboard by up to 0.6s, while a tree
// carrying the IME's own view ids is the keyboard being on screen, read a
// moment ago. Once dismissed, the re-reads confirm it went rather than pressing
// BACK again, so a keyboard the app puts straight back costs re-reads and never
// a second back press.
internal fun treeWithoutKeyboard(
tree: String,
imePackage: String?,
dismiss: () -> Unit,
reread: () -> String,
sleep: (Long) -> Unit = { Thread.sleep(it) },
): String {
if (imePackage == null || !treeShowsIme(tree, imePackage)) return tree
dismiss()
var current = tree
repeat(KEYBOARD_DISMISS_READS) {
sleep(KEYBOARD_DISMISS_INTERVAL_MILLIS)
current = reread()
if (!treeShowsIme(current, imePackage)) return current
}
return current
}
// SELECT_ALL_COMMAND selects the focused field's whole content with
// CTRL+A (keycodes 113 and 29) and DELETE_KEY_COMMAND then deletes the
// selection (keycode 67). Two key events, whatever the field holds.
internal const val SELECT_ALL_COMMAND = "input keycombination 113 29"
internal const val DELETE_KEY_COMMAND = "input keyevent 67"
// DELETE_BATCH_KEYS bounds how many deletes ride in one `input keyevent`
// invocation on the fallback path. `input` takes a list of keycodes, so the
// round trip is paid per batch rather than per character: measured 2.3 ms/char
// against the 29.6 ms/char of one round trip each.
internal const val DELETE_BATCH_KEYS = 200
internal fun deleteKeyCommands(count: Int, batch: Int): List<String> {
if (count <= 0) return emptyList()
val size = batch.coerceAtLeast(1)
return (0 until count).chunked(size).map { chunk ->
chunk.joinToString(" ", prefix = "input keyevent ") { "67" }
}
}
// focusedEditableTextLength reports how much text the focused text field
// holds, or null when the tree names no focused text field. Null is "cannot
// tell", which is not the same as empty and must not be read as it.
//
// The field is found by class, not by an "editable" attribute: maestro's tree
// carries no such attribute. Class also settles the trap an open keyboard
// sets, which is that the IME contributes a focused node of its own. That node
// holds no text, so taking the first focused node would read a field still
// holding 4096 characters as empty, and empty is the answer that stops the
// erase.
internal fun focusedEditableTextLength(treeJson: String): Int? {
if (treeJson.isBlank()) return null
return try {
focusedFieldLength(jsonMapper.readTree(treeJson))
} catch (_: Exception) {
null
}
}
private fun focusedFieldLength(
node: com.fasterxml.jackson.databind.JsonNode,
): Int? {
val attributes = node.get("attributes")
if (attributes != null && attributes.isObject &&
attributes.get("focused")?.asText() == "true" &&
attributes.get("class")?.asText().orEmpty().endsWith("EditText")
) {
return attributes.get("text")?.asText().orEmpty().length
}
val children = node.get("children") ?: return null
if (!children.isArray) return null
for (child in children) focusedFieldLength(child)?.let { return it }
return null
}
// eraseFocusedField clears the field the runner just tapped.
//
// maestro's eraseText sends one delete per character through its own
// instrumentation, which measured 29.6 ms/char on the API 34 emulator: the
// 4096-character string the corpus types cost ~121s to clear, a fifth of a 20
// minute budget spent on one step. Selecting the content and deleting the
// selection costs the same two key events at any length, measured 0.15s to
// 1.16s for 4096 characters across API 34, 35 and 36.
//
// A fast erase that leaves characters behind would be far worse than a slow
// one, because the next InputText appends to the residue and nothing
// downstream detects it. So the result is read back off the tree, and a field
// that is not empty, or that the tree cannot report on at all, is finished off
// per character. Those deletes ride in batches, so even that path costs one
// round trip per batch rather than the one per character this replaces.
internal fun eraseFocusedField(
characterCount: Int,
shell: (String) -> Unit,
focusedTextLength: () -> Int?,
) {
if (characterCount <= 0) return
shell(SELECT_ALL_COMMAND)
shell(DELETE_KEY_COMMAND)
if (focusedTextLength() == 0) return
for (command in deleteKeyCommands(characterCount, DELETE_BATCH_KEYS)) {
shell(command)
}
}
// typingOwner picks what the mid-type foreground guard holds later reads
// against. A dumpsys it could read names the resumed package, and that is the
// answer.
//
// A read that failed is the interesting case, and neither obvious answer is
// right. Passing null hands typeChunks "no owner", which switches the guard off
// altogether and lets the rest of the string spray into whatever holds the
// foreground: an unreadable probe must never read as focus being fine. But
// refusing to type is worse in practice. The failure is a degraded link, which
// lasts, so every InputText in the run becomes a no-op, the budget goes on
// typing nothing, and the run ends green having tested nothing.
//
// So it falls back to the bundle the run launched, which leaves the guard armed
// against the app the keystrokes were meant for. That reference is better than
// the resumed package anyway: a foreground already stolen before typing began
// reads as its own owner, and the guard then matches it happily chunk after
// chunk.
internal fun typingOwner(
dumpsys: String,
launchedBundleId: String?,
warn: (String) -> Unit,
): String? {
parseResumedPackage(dumpsys)?.let { return it }
warn(
"warn: could not read the foreground app; guarding typing with " +
(
launchedBundleId?.let { "the launched bundle $it" }
?: "nothing, no launch was recorded"
),
)
return launchedBundleId
}
// resumedActivityPackage matches a "package/activity" component, mirroring the
// Go scope guard's regex so both read the same dumpsys wording.
private val resumedActivityPackage =
@@ -831,6 +1106,14 @@ internal fun <T> retryOpen(
class MaestroDriverBackend(private val serial: String?) : DriverBackend {
private val dadb: dadb.Dadb = buildDadb(serial)
private val imePackage: String? by lazy {
imePackageOf(
runCatching {
dadb.shell("settings get secure default_input_method").allOutput
}.getOrDefault(""),
)
}
// A fresh AndroidDriver per open attempt. Its gRPC channel is built once in
// the constructor and permanently shut down by close(), so reopening a
// closed instance would reuse a dead channel; rebuild it each try instead.
@@ -847,6 +1130,9 @@ class MaestroDriverBackend(private val serial: String?) : DriverBackend {
}
}
@Volatile
private var launchedBundleId: String? = null
override fun launch(
bundleId: String,
clearState: Boolean,
@@ -854,6 +1140,7 @@ class MaestroDriverBackend(private val serial: String?) : DriverBackend {
) {
if (clearState) driver.clearAppState(bundleId)
driver.launchApp(bundleId, env)
launchedBundleId = bundleId
}
override fun terminate(bundleId: String) = driver.stopApp(bundleId)
@@ -885,6 +1172,11 @@ class MaestroDriverBackend(private val serial: String?) : DriverBackend {
} else {
driver.inputText(text)
}
// A probe that fails reads as "no IME open", which is the safe way to be
// wrong: it skips the dismissal rather than sending a stray BACK.
dismissSoftKeyboard {
runCatching { dadb.shell(it).allOutput }.getOrDefault("")
}
}
// typeShellSafe types shell-safe ASCII through adb `input text` in chunks,
@@ -892,8 +1184,14 @@ class MaestroDriverBackend(private val serial: String?) : DriverBackend {
// started in has lost the foreground, the remaining keystrokes would spray
// into whatever window stole it (the launcher search box, in practice), so
// typing stops instead of leaking out of the app under test.
//
// typingOwner decides what "the app the type started in" means when the
// read that would name it fails: the launched bundle, so a link that cannot
// answer degrades the guard rather than switching it off.
private fun typeShellSafe(text: String) {
val owner = foregroundPackage()
val owner = typingOwner(foregroundDumpsys(), launchedBundleId) {
System.err.println(it)
}
val typed =
typeChunks(chunkForInput(text, INPUT_CHUNK_CHARS), owner, {
foregroundPackage()
@@ -907,17 +1205,21 @@ class MaestroDriverBackend(private val serial: String?) : DriverBackend {
}
}
// foregroundPackage returns the package of the top resumed activity, or null
// if it cannot be read. Used to detect mid-type focus escapes.
private fun foregroundPackage(): String? = parseResumedPackage(
adbOutput(
serial,
listOf("shell", "dumpsys", "activity", "activities"),
),
private fun foregroundDumpsys(): String = adbOutput(
serial,
listOf("shell", "dumpsys", "activity", "activities"),
)
override fun eraseText(characterCount: Int) =
driver.eraseText(characterCount)
// foregroundPackage returns the package of the top resumed activity, or null
// if it cannot be read. Used to detect mid-type focus escapes.
private fun foregroundPackage(): String? =
parseResumedPackage(foregroundDumpsys())
override fun eraseText(characterCount: Int) = eraseFocusedField(
characterCount,
shell = { dadb.shell(it) },
focusedTextLength = { focusedEditableTextLength(hierarchy()) },
)
override fun swipe(
fromX: Int,
@@ -961,8 +1263,15 @@ class MaestroDriverBackend(private val serial: String?) : DriverBackend {
// read the snapshot was going to do anyway. That is what makes this
// affordable, where the structural poll that used to run in waitForIdle was
// not: it fetched the hierarchy ~4 more times on every mutating step.
override fun snapshot(): SnapshotSample =
SnapshotSample(awaitSettledTree { hierarchy() }, screenshot())
override fun snapshot(): SnapshotSample {
val tree = treeWithoutKeyboard(
awaitSettledTree { hierarchy() },
imePackage,
dismiss = { runCatching { dadb.shell("input keyevent 4") } },
reread = { awaitSettledTree { hierarchy() } },
)
return SnapshotSample(tree, screenshot())
}
override fun waitForIdle(durationMillis: Long) {
// waitForAppToSettle blocks on the View-system animation and maestro's
@@ -1014,15 +1323,75 @@ internal fun dadbTargetFor(serial: String?): DadbTarget {
}
}
internal data class AdbServerEndpoint(val host: String, val port: Int)
private const val ADB_SERVER_HOST = "localhost"
private const val ADB_SERVER_PORT = 5037
// adbServerEndpoint reads where the adb server listens the way the adb CLI
// reads it: ADB_SERVER_SOCKET ("tcp:host:port", or "tcp:port" for a server on
// this machine) outranks the older ANDROID_ADB_SERVER_ADDRESS /
// ANDROID_ADB_SERVER_PORT pair, and unset means the loopback default.
//
// A value it cannot read throws instead of falling back to loopback. The
// fallback is the dangerous answer: emulator serials are numbered per server,
// so a run aimed at a remote emulator-5554 would quietly drive whatever this
// machine calls emulator-5554 and report the results as the remote device's.
internal fun adbServerEndpoint(
env: (String) -> String? = System::getenv,
): AdbServerEndpoint {
val socket = env("ADB_SERVER_SOCKET")?.trim().orEmpty()
if (socket.isNotEmpty()) return parseAdbServerSocket(socket)
val host = env("ANDROID_ADB_SERVER_ADDRESS")?.trim().orEmpty()
val port = env("ANDROID_ADB_SERVER_PORT")?.trim().orEmpty()
return AdbServerEndpoint(
host.ifEmpty { ADB_SERVER_HOST },
if (port.isEmpty()) {
ADB_SERVER_PORT
} else {
adbServerPort(port, "ANDROID_ADB_SERVER_PORT=\"$port\"")
},
)
}
private fun parseAdbServerSocket(value: String): AdbServerEndpoint {
val named = "ADB_SERVER_SOCKET=\"$value\""
val address = value.removePrefix("tcp:")
if (address == value) rejectAdbServerSocket(named)
val colon = address.lastIndexOf(':')
if (colon < 0) {
return AdbServerEndpoint(
ADB_SERVER_HOST,
adbServerPort(address, named),
)
}
val host = address.substring(0, colon)
if (host.isEmpty()) rejectAdbServerSocket(named)
return AdbServerEndpoint(
host,
adbServerPort(address.substring(colon + 1), named),
)
}
private fun rejectAdbServerSocket(named: String): Nothing =
throw IllegalArgumentException("$named is not tcp:host:port")
private fun adbServerPort(text: String, named: String): Int =
text.toIntOrNull()?.takeIf { it in 1..65535 }
?: throw IllegalArgumentException("$named has no usable port")
private fun buildDadb(serial: String?): dadb.Dadb =
when (val target = dadbTargetFor(serial)) {
is DadbTarget.Tcp -> dadb.Dadb.create(target.host, target.port)
is DadbTarget.Server -> dadb.adbserver.AdbServer.createDadb(
"localhost",
5037,
"host:transport:${target.serial}",
)
is DadbTarget.Server -> {
val server = adbServerEndpoint()
dadb.adbserver.AdbServer.createDadb(
server.host,
server.port,
"host:transport:${target.serial}",
)
}
}
internal fun findBoundsBySelector(
@@ -1086,7 +1455,8 @@ internal fun pngHeight(bytes: ByteArray): Int {
(bytes[22].toInt() and 0xFF shl 8) or (bytes[23].toInt() and 0xFF)
}
internal const val IOS_XCTEST_RUNNER_BUNDLE_ID = "dev.mobile.maestro-driver-iosUITests.xctrunner"
internal const val IOS_XCTEST_RUNNER_BUNDLE_ID =
"dev.mobile.maestro-driver-iosUITests.xctrunner"
// reapOrphanIosRunners kills XCTest runner sessions left over from a prior
// run. A sidecar that died without its shutdown hook leaves its xcodebuild
@@ -31,7 +31,10 @@ class DriverService(
private val launchedBundleId = AtomicReference<String?>(null)
private val snapshotLock = Any()
override fun launch(request: LaunchRequest, responseObserver: StreamObserver<Empty>) {
override fun launch(
request: LaunchRequest,
responseObserver: StreamObserver<Empty>,
) {
runRpc(responseObserver) {
backend.launch(request.bundleId, request.clearState, request.envMap)
launchedBundleId.set(request.bundleId)
@@ -39,7 +42,10 @@ class DriverService(
}
}
override fun terminate(request: Empty, responseObserver: StreamObserver<Empty>) {
override fun terminate(
request: Empty,
responseObserver: StreamObserver<Empty>,
) {
runRpc(responseObserver) {
launchedBundleId.get()?.let { backend.terminate(it) }
launchedBundleId.set(null)
@@ -54,42 +60,60 @@ class DriverService(
}
}
override fun doubleTap(request: Point, responseObserver: StreamObserver<Empty>) {
override fun doubleTap(
request: Point,
responseObserver: StreamObserver<Empty>,
) {
runRpc(responseObserver) {
backend.doubleTap(request.x, request.y)
Empty.getDefaultInstance()
}
}
override fun longPress(request: Point, responseObserver: StreamObserver<Empty>) {
override fun longPress(
request: Point,
responseObserver: StreamObserver<Empty>,
) {
runRpc(responseObserver) {
backend.longPress(request.x, request.y)
Empty.getDefaultInstance()
}
}
override fun tapSelector(request: Selector, responseObserver: StreamObserver<Empty>) {
override fun tapSelector(
request: Selector,
responseObserver: StreamObserver<Empty>,
) {
runRpc(responseObserver) {
backend.tapSelector(request.value)
Empty.getDefaultInstance()
}
}
override fun inputText(request: Text, responseObserver: StreamObserver<Empty>) {
override fun inputText(
request: Text,
responseObserver: StreamObserver<Empty>,
) {
runRpc(responseObserver) {
backend.inputText(request.value)
Empty.getDefaultInstance()
}
}
override fun eraseText(request: EraseTextRequest, responseObserver: StreamObserver<Empty>) {
override fun eraseText(
request: EraseTextRequest,
responseObserver: StreamObserver<Empty>,
) {
runRpc(responseObserver) {
backend.eraseText(request.characterCount)
Empty.getDefaultInstance()
}
}
override fun swipe(request: SwipeRequest, responseObserver: StreamObserver<Empty>) {
override fun swipe(
request: SwipeRequest,
responseObserver: StreamObserver<Empty>,
) {
runRpc(responseObserver) {
val from = request.from
val to = request.to
@@ -98,16 +122,25 @@ class DriverService(
}
}
override fun pressKey(request: PressKeyRequest, responseObserver: StreamObserver<Empty>) {
override fun pressKey(
request: PressKeyRequest,
responseObserver: StreamObserver<Empty>,
) {
runRpc(responseObserver) {
backend.pressKey(request.key)
Empty.getDefaultInstance()
}
}
override fun recentLogs(request: RecentLogsRequest, responseObserver: StreamObserver<LogEntries>) {
override fun recentLogs(
request: RecentLogsRequest,
responseObserver: StreamObserver<LogEntries>,
) {
runRpc(responseObserver) {
val entries = backend.recentLogs(request.sinceUnixMillis, request.levelAtLeast)
val entries = backend.recentLogs(
request.sinceUnixMillis,
request.levelAtLeast,
)
val builder = LogEntries.newBuilder()
for (entry in entries) {
builder.addEntries(
@@ -123,7 +156,10 @@ class DriverService(
}
}
override fun screenshot(request: Empty, responseObserver: StreamObserver<Image>) {
override fun screenshot(
request: Empty,
responseObserver: StreamObserver<Image>,
) {
runRpc(responseObserver) {
val (png, width, height) = backend.screenshot()
Image.newBuilder()
@@ -134,18 +170,28 @@ class DriverService(
}
}
override fun hierarchy(request: Empty, responseObserver: StreamObserver<HierarchyJSON>) {
override fun hierarchy(
request: Empty,
responseObserver: StreamObserver<HierarchyJSON>,
) {
runRpc(responseObserver) {
HierarchyJSON.newBuilder().setJson(backend.hierarchy()).build()
}
}
override fun snapshot(request: Empty, responseObserver: StreamObserver<SnapshotResponse>) {
override fun snapshot(
request: Empty,
responseObserver: StreamObserver<SnapshotResponse>,
) {
runRpc(responseObserver) {
val sample = synchronized(snapshotLock) { backend.snapshot() }
val (png, width, height) = sample.screenshot
SnapshotResponse.newBuilder()
.setHierarchy(HierarchyJSON.newBuilder().setJson(sample.hierarchyJson).build())
.setHierarchy(
HierarchyJSON.newBuilder()
.setJson(sample.hierarchyJson)
.build(),
)
.setScreenshot(
Image.newBuilder()
.setPng(ByteString.copyFrom(png))
@@ -157,14 +203,20 @@ class DriverService(
}
}
override fun waitForIdle(request: Duration, responseObserver: StreamObserver<Empty>) {
override fun waitForIdle(
request: Duration,
responseObserver: StreamObserver<Empty>,
) {
runRpc(responseObserver) {
backend.waitForIdle(request.millis)
Empty.getDefaultInstance()
}
}
override fun health(request: Empty, responseObserver: StreamObserver<HealthStatus>) {
override fun health(
request: Empty,
responseObserver: StreamObserver<HealthStatus>,
) {
runRpc(responseObserver) {
HealthStatus.newBuilder()
.setReady(backend.healthy())
@@ -174,9 +226,16 @@ class DriverService(
}
}
override fun metrics(request: MetricsRequest, responseObserver: StreamObserver<MetricsResponse>) {
override fun metrics(
request: MetricsRequest,
responseObserver: StreamObserver<MetricsResponse>,
) {
runRpc(responseObserver) {
val bundleId = if (request.bundleId.isNotEmpty()) request.bundleId else launchedBundleId.get().orEmpty()
val bundleId = if (request.bundleId.isNotEmpty()) {
request.bundleId
} else {
launchedBundleId.get().orEmpty()
}
val sample = backend.metrics(bundleId)
MetricsResponse.newBuilder()
.setCpuPercent(sample.cpuPercent)
@@ -191,7 +250,9 @@ class DriverService(
// stale session, then closes the backend so the iOS XCTest runner process
// dies with us instead of being orphaned.
fun shutdown() {
runCatching { launchedBundleId.getAndSet(null)?.let { backend.terminate(it) } }
runCatching {
launchedBundleId.getAndSet(null)?.let { backend.terminate(it) }
}
runCatching { backend.close() }
}
@@ -209,8 +270,10 @@ class DriverService(
// failures that do not extend Exception, and an uncaught one
// kills the RPC as a channel-level Unknown instead of a status
// the runner can classify.
observer.onError(io.grpc.Status.INTERNAL.withDescription(cause.toString())
.withCause(cause).asRuntimeException())
observer.onError(
io.grpc.Status.INTERNAL.withDescription(cause.toString())
.withCause(cause).asRuntimeException(),
)
}
}
@@ -13,14 +13,17 @@ class SidecarServer(
private val shutdownLatch = CountDownLatch(1)
fun start(): Int {
val server = NettyServerBuilder.forAddress(InetSocketAddress("127.0.0.1", port))
val server = NettyServerBuilder
.forAddress(InetSocketAddress("127.0.0.1", port))
.addService(service)
.build()
server.start()
grpcServer = server
Runtime.getRuntime().addShutdownHook(Thread {
stop()
})
Runtime.getRuntime().addShutdownHook(
Thread {
stop()
},
)
return server.port
}
@@ -48,23 +51,41 @@ class SidecarServer(
// lost from run output.
private fun quietExpectedDriverNoise() {
org.apache.logging.log4j.core.config.Configurator.setLevel(
"util.CommandLineUtils", org.apache.logging.log4j.Level.OFF)
"util.CommandLineUtils",
org.apache.logging.log4j.Level.OFF,
)
org.apache.logging.log4j.core.config.Configurator.setLevel(
"xcuitest.XCTestDriverClient", org.apache.logging.log4j.Level.OFF)
"xcuitest.XCTestDriverClient",
org.apache.logging.log4j.Level.OFF,
)
org.apache.logging.log4j.core.config.Configurator.setLevel(
"maestro.drivers.AndroidDriver", org.apache.logging.log4j.Level.OFF)
"maestro.drivers.AndroidDriver",
org.apache.logging.log4j.Level.OFF,
)
}
fun main(arguments: Array<String>) {
quietExpectedDriverNoise()
val port = arguments.indexOf("--port").let { index ->
if (index >= 0 && index + 1 < arguments.size) arguments[index + 1].toInt() else 0
if (index >= 0 && index + 1 < arguments.size) {
arguments[index + 1].toInt()
} else {
0
}
}
val platform = arguments.indexOf("--platform").let { index ->
if (index >= 0 && index + 1 < arguments.size) arguments[index + 1] else "android"
if (index >= 0 && index + 1 < arguments.size) {
arguments[index + 1]
} else {
"android"
}
}
val serial = arguments.indexOf("--serial").let { index ->
if (index >= 0 && index + 1 < arguments.size) arguments[index + 1] else null
if (index >= 0 && index + 1 < arguments.size) {
arguments[index + 1]
} else {
null
}
}
val backend: DriverBackend = when (platform) {
@@ -74,7 +95,9 @@ fun main(arguments: Array<String>) {
val service = DriverService(platform = platform, backend = backend)
val server = SidecarServer(port, service)
val boundPort = server.start()
println("sanderling-sidecar listening on 127.0.0.1:$boundPort platform=$platform")
println(
"sanderling-sidecar listening on 127.0.0.1:$boundPort platform=$platform",
)
System.out.flush()
server.awaitTermination()
}
@@ -0,0 +1,120 @@
package dev.sanderling.sidecar
import org.junit.Test
import java.io.InputStream
import java.io.OutputStream
import java.util.concurrent.CountDownLatch
import kotlin.test.assertEquals
import kotlin.test.assertTrue
class AdbOutputTimeoutTest {
// An adb wedged on the link neither writes nor exits, so the read never
// reaches EOF. Without a bound on the READ the step waits for as long as
// adb feels like it: one such stall measured ~100s against a remote adb
// server. The bound has to release the reader as well as return, which is
// what killing the process does.
@Test(timeout = 20_000L)
fun aWedgedReadIsAbandonedAtTheBoundInsteadOfHangingForever() {
val process = FakeProcess(BlockingStream())
val logged = mutableListOf<String>()
val started = System.currentTimeMillis()
val output = readProcessOutput(process, 200L, { "adb shell pidof" }) {
logged.add(it)
}
val elapsed = System.currentTimeMillis() - started
assertEquals("", output, "a read that never lands is no answer")
assertTrue(process.destroyed, "the wedged adb must be killed, not left")
assertTrue(
elapsed < 10_000L,
"returned in ${elapsed}ms, not at a bound",
)
assertEquals(1, logged.size, "a silent timeout hides a degrading link")
}
@Test(timeout = 20_000L)
fun theAbandonedReadNamesTheCommandAndTheBound() {
val logged = mutableListOf<String>()
readProcessOutput(
FakeProcess(BlockingStream()),
200L,
{ "adb -s emulator-5556 shell cat /proc/6103/stat" },
) { logged.add(it) }
val line = logged.single()
assertTrue(
line.contains("adb -s emulator-5556 shell cat /proc/6103/stat"),
line,
)
assertTrue(line.contains("200"), line)
}
// The bound must cost the healthy path nothing: output that arrives comes
// back whole, and the process is left to exit on its own.
@Test(timeout = 20_000L)
fun outputThatArrivesComesBackWholeAndTheProcessSurvives() {
val text = "VmRSS:\t 123456 kB\nVmSize:\t 654321 kB\n"
val process = FakeProcess(text.byteInputStream())
val logged = mutableListOf<String>()
val output = readProcessOutput(process, 5_000L, { "adb shell cat" }) {
logged.add(it)
}
assertEquals(text, output)
assertTrue(!process.destroyed, "a process that answered is not killed")
assertTrue(logged.isEmpty(), "nothing to report on the healthy path")
}
// Output larger than a pipe buffer is why the read cannot be deferred
// until after the process exits: a process with more to say than the
// buffer holds blocks writing while a waiter waits for it to finish.
@Test(timeout = 20_000L)
fun outputLargerThanAPipeBufferComesBackWhole() {
val text = "x".repeat(512 * 1024)
val output = readProcessOutput(
FakeProcess(text.byteInputStream()),
5_000L,
{ "adb logcat -d" },
) {}
assertEquals(text.length, output.length)
}
}
// BlockingStream models a wedged adb: no bytes, and no EOF either, until the
// process is killed and the pipe closes under the reader.
private class BlockingStream : InputStream() {
private val released = CountDownLatch(1)
override fun read(): Int {
released.await()
return -1
}
override fun close() {
released.countDown()
}
}
private class FakeProcess(private val stream: InputStream) : Process() {
@Volatile var destroyed = false
private set
override fun getOutputStream(): OutputStream =
OutputStream.nullOutputStream()
override fun getInputStream(): InputStream = stream
override fun getErrorStream(): InputStream = InputStream.nullInputStream()
override fun waitFor(): Int = 0
override fun exitValue(): Int = 0
override fun destroy() {
destroyed = true
stream.close()
}
}
@@ -2,6 +2,8 @@ package dev.sanderling.sidecar
import org.junit.Test
import kotlin.test.assertEquals
import kotlin.test.assertFailsWith
import kotlin.test.assertTrue
class DadbTargetTest {
@@ -10,7 +12,10 @@ class DadbTargetTest {
}
@Test fun hostPortSerialConnectsDirectly() {
assertEquals(DadbTarget.Tcp("192.168.1.243", 5555), dadbTargetFor("192.168.1.243:5555"))
assertEquals(
DadbTarget.Tcp("192.168.1.243", 5555),
dadbTargetFor("192.168.1.243:5555"),
)
}
@Test fun usbSerialRoutesThroughAdbServer() {
@@ -20,6 +25,108 @@ class DadbTargetTest {
// A colon with a non-numeric port is a USB serial that merely contains a
// colon, not a host:port, so it must route through the adb server.
@Test fun colonWithNonNumericPortIsAServerSerial() {
assertEquals(DadbTarget.Server("emulator:5554x"), dadbTargetFor("emulator:5554x"))
assertEquals(
DadbTarget.Server("emulator:5554x"),
dadbTargetFor("emulator:5554x"),
)
}
// A serial-addressed device is reached through whichever adb server the
// environment names. Ignoring it sends the run to this machine's own
// server, where the serial either is missing or, worse, names a different
// device that happens to share the emulator numbering.
@Test fun adbServerSocketNamesARemoteServer() {
assertEquals(
AdbServerEndpoint("100.68.126.75", 5037),
adbServerEndpoint(
env("ADB_SERVER_SOCKET" to "tcp:100.68.126.75:5037"),
),
)
}
@Test fun adbServerSocketWithOnlyAPortStaysLocal() {
assertEquals(
AdbServerEndpoint("localhost", 5038),
adbServerEndpoint(env("ADB_SERVER_SOCKET" to "tcp:5038")),
)
}
@Test fun androidAdbServerAddressAndPortPairIsHonoured() {
assertEquals(
AdbServerEndpoint("10.0.0.4", 5040),
adbServerEndpoint(
env(
"ANDROID_ADB_SERVER_ADDRESS" to "10.0.0.4",
"ANDROID_ADB_SERVER_PORT" to "5040",
),
),
)
}
@Test fun adbServerSocketOutranksTheOlderPair() {
assertEquals(
AdbServerEndpoint("100.68.126.75", 5037),
adbServerEndpoint(
env(
"ADB_SERVER_SOCKET" to "tcp:100.68.126.75:5037",
"ANDROID_ADB_SERVER_ADDRESS" to "10.0.0.4",
"ANDROID_ADB_SERVER_PORT" to "5040",
),
),
)
}
@Test fun unsetEnvironmentKeepsTheLoopbackDefault() {
assertEquals(
AdbServerEndpoint("localhost", 5037),
adbServerEndpoint(env()),
)
assertEquals(
AdbServerEndpoint("localhost", 5037),
adbServerEndpoint(env("ADB_SERVER_SOCKET" to "")),
)
}
@Test fun eitherHalfOfTheOlderPairAloneKeepsTheOtherDefault() {
assertEquals(
AdbServerEndpoint("10.0.0.4", 5037),
adbServerEndpoint(env("ANDROID_ADB_SERVER_ADDRESS" to "10.0.0.4")),
)
assertEquals(
AdbServerEndpoint("localhost", 5040),
adbServerEndpoint(env("ANDROID_ADB_SERVER_PORT" to "5040")),
)
}
// A value that cannot be read must stop the run and say which variable
// held what. Falling back to loopback would drive this machine's devices
// while the operator believes the run is on the remote ones.
@Test fun malformedValuesFailNamingTheVariableAndItsContents() {
val cases = mapOf(
"ADB_SERVER_SOCKET" to listOf(
"100.68.126.75:5037",
"tcp:100.68.126.75:pear",
"tcp:",
"tcp::5037",
"unix:/tmp/adb",
"tcp:100.68.126.75:70000",
),
"ANDROID_ADB_SERVER_PORT" to listOf("pear", "0", "-1"),
)
for ((variable, values) in cases) {
for (value in values) {
val failure = assertFailsWith<IllegalArgumentException>(value) {
adbServerEndpoint(env(variable to value))
}
val message = failure.message.orEmpty()
assertTrue(message.contains(variable), message)
assertTrue(message.contains(value), message)
}
}
}
}
private fun env(vararg entries: Pair<String, String>): (String) -> String? {
val values = entries.toMap()
return { values[it] }
}
@@ -24,7 +24,8 @@ class DeviceOutputParserTest {
assertEquals("FATAL EXCEPTION: main", lines[0].message)
val year = java.util.Calendar.getInstance().get(java.util.Calendar.YEAR)
val cal = java.util.Calendar.getInstance().apply { timeInMillis = lines[0].unixMillis }
val cal = java.util.Calendar.getInstance()
.apply { timeInMillis = lines[0].unixMillis }
assertEquals(year, cal.get(java.util.Calendar.YEAR))
assertEquals(56, cal.get(java.util.Calendar.SECOND))
assertEquals(789, cal.get(java.util.Calendar.MILLISECOND))
@@ -51,7 +52,9 @@ class DeviceOutputParserTest {
@Test fun parseCpuTicksReturnsNullOnTruncatedOrNonNumericStat() {
assertNull(parseCpuTicks("1234 (app) S 1 2 3"))
assertNull(parseCpuTicks("1234 (app) S " + (1..12).joinToString(" ") { "x" }))
assertNull(
parseCpuTicks("1234 (app) S " + (1..12).joinToString(" ") { "x" }),
)
assertNull(parseCpuTicks(""))
}
@@ -79,8 +82,14 @@ class DeviceOutputParserTest {
}
@Test fun parseBoundsAcceptsWellFormedAndRejectsMalformed() {
assertEquals(listOf(0, 0, 1080, 2340), parseBounds("[0,0,1080,2340]")?.toList())
assertEquals(listOf(-5, -10, 20, 30), parseBounds("[-5,-10,20,30]")?.toList())
assertEquals(
listOf(0, 0, 1080, 2340),
parseBounds("[0,0,1080,2340]")?.toList(),
)
assertEquals(
listOf(-5, -10, 20, 30),
parseBounds("[-5,-10,20,30]")?.toList(),
)
assertNull(parseBounds("[0,0,1080]"))
assertNull(parseBounds("0,0,1,1"))
assertNull(parseBounds("[0, 0, 1, 1]"))
@@ -92,10 +101,14 @@ class DeviceOutputParserTest {
"resource-id" to "com.example:id/loginButton",
"bounds" to "[10,20,110,80]",
)
assertEquals(listOf(10, 20, 110, 80), findBoundsBySelector(tree, "id:loginButton")?.toList())
assertEquals(
listOf(10, 20, 110, 80),
findBoundsBySelector(tree, "id:com.example:id/loginButton")?.toList(),
findBoundsBySelector(tree, "id:loginButton")?.toList(),
)
assertEquals(
listOf(10, 20, 110, 80),
findBoundsBySelector(tree, "id:com.example:id/loginButton")
?.toList(),
)
}
@@ -104,21 +117,36 @@ class DeviceOutputParserTest {
"resource-id" to "root",
children = listOf(
node("text" to "Sign in", "bounds" to "[1,2,3,4]"),
node("content-desc" to "AccountCardRow-7", "bounds" to "[5,6,7,8]"),
node(
"content-desc" to "AccountCardRow-7",
"bounds" to "[5,6,7,8]",
),
),
)
assertEquals(listOf(1, 2, 3, 4), findBoundsBySelector(tree, "text:Sign in")?.toList())
assertEquals(listOf(5, 6, 7, 8), findBoundsBySelector(tree, "descPrefix:AccountCard")?.toList())
assertEquals(
listOf(1, 2, 3, 4),
findBoundsBySelector(tree, "text:Sign in")?.toList(),
)
assertEquals(
listOf(5, 6, 7, 8),
findBoundsBySelector(tree, "descPrefix:AccountCard")?.toList(),
)
}
@Test fun findBoundsBySelectorReturnsNullForBadSelectorOrNoMatch() {
val tree = node("resource-id" to "com.example:id/x", "bounds" to "[0,0,1,1]")
val tree = node(
"resource-id" to "com.example:id/x",
"bounds" to "[0,0,1,1]",
)
assertNull(findBoundsBySelector(tree, "id"))
assertNull(findBoundsBySelector(tree, "id:missing"))
}
@Test fun findBoundsBySelectorReturnsNullWhenMatchHasMalformedBounds() {
val tree = node("resource-id" to "com.example:id/x", "bounds" to "not-bounds")
val tree = node(
"resource-id" to "com.example:id/x",
"bounds" to "not-bounds",
)
assertNull(findBoundsBySelector(tree, "id:x"))
}
@@ -132,17 +160,26 @@ class DeviceOutputParserTest {
private fun ihdr(width: Int, height: Int): ByteArray {
val b = ByteArray(33)
for (i in 0 until 8) b[8 + i] = 0
b[12] = 'I'.code.toByte(); b[13] = 'H'.code.toByte()
b[14] = 'D'.code.toByte(); b[15] = 'R'.code.toByte()
b[16] = (width ushr 24).toByte(); b[17] = (width ushr 16).toByte()
b[18] = (width ushr 8).toByte(); b[19] = width.toByte()
b[20] = (height ushr 24).toByte(); b[21] = (height ushr 16).toByte()
b[22] = (height ushr 8).toByte(); b[23] = height.toByte()
b[12] = 'I'.code.toByte()
b[13] = 'H'.code.toByte()
b[14] = 'D'.code.toByte()
b[15] = 'R'.code.toByte()
b[16] = (width ushr 24).toByte()
b[17] = (width ushr 16).toByte()
b[18] = (width ushr 8).toByte()
b[19] = width.toByte()
b[20] = (height ushr 24).toByte()
b[21] = (height ushr 16).toByte()
b[22] = (height ushr 8).toByte()
b[23] = height.toByte()
return b
}
private fun node(
vararg attrs: Pair<String, String>,
children: List<maestro.TreeNode> = emptyList(),
): maestro.TreeNode = maestro.TreeNode(attributes = attrs.toMap().toMutableMap(), children = children)
): maestro.TreeNode = maestro.TreeNode(
attributes = attrs.toMap().toMutableMap(),
children = children,
)
}
@@ -20,20 +20,34 @@ import org.junit.Test
import kotlin.test.assertEquals
import kotlin.test.assertTrue
private data class Quintuple<A, B, C, D, E>(val a: A, val b: B, val c: C, val d: D, val e: E)
private data class Quintuple<A, B, C, D, E>(
val a: A,
val b: B,
val c: C,
val d: D,
val e: E,
)
class DriverServiceTest {
@get:Rule val grpcCleanup: GrpcCleanupRule = GrpcCleanupRule()
private fun newClient(backend: DriverBackend): DriverGrpc.DriverBlockingStub {
private fun newClient(
backend: DriverBackend,
): DriverGrpc.DriverBlockingStub {
val serverName = InProcessServerBuilder.generateName()
val service = DriverService(platform = "android", backend = backend)
grpcCleanup.register(
InProcessServerBuilder.forName(serverName).directExecutor().addService(service).build().start()
InProcessServerBuilder.forName(serverName)
.directExecutor()
.addService(service)
.build()
.start(),
)
val channel: ManagedChannel = grpcCleanup.register(
InProcessChannelBuilder.forName(serverName).directExecutor().build()
InProcessChannelBuilder.forName(serverName)
.directExecutor()
.build(),
)
return DriverGrpc.newBlockingStub(channel)
}
@@ -59,20 +73,32 @@ class DriverServiceTest {
var terminated: String? = null
var closed = false
val backend = object : DriverBackend by StubDriverBackend("android") {
override fun terminate(bundleId: String) { terminated = bundleId }
override fun close() { closed = true }
override fun terminate(bundleId: String) {
terminated = bundleId
}
override fun close() {
closed = true
}
}
val serverName = InProcessServerBuilder.generateName()
val service = DriverService(platform = "android", backend = backend)
grpcCleanup.register(
InProcessServerBuilder.forName(serverName).directExecutor().addService(service).build().start()
InProcessServerBuilder.forName(serverName)
.directExecutor()
.addService(service)
.build()
.start(),
)
val channel: ManagedChannel = grpcCleanup.register(
InProcessChannelBuilder.forName(serverName).directExecutor().build()
InProcessChannelBuilder.forName(serverName)
.directExecutor()
.build(),
)
val client = DriverGrpc.newBlockingStub(channel)
client.launch(LaunchRequest.newBuilder().setBundleId("com.example").build())
client.launch(
LaunchRequest.newBuilder().setBundleId("com.example").build(),
)
service.shutdown()
assertEquals("com.example", terminated)
@@ -83,8 +109,12 @@ class DriverServiceTest {
var terminated: String? = null
var closed = false
val backend = object : DriverBackend by StubDriverBackend("android") {
override fun terminate(bundleId: String) { terminated = bundleId }
override fun close() { closed = true }
override fun terminate(bundleId: String) {
terminated = bundleId
}
override fun close() {
closed = true
}
}
val service = DriverService(platform = "android", backend = backend)
@@ -128,17 +158,17 @@ class DriverServiceTest {
// the runner can tell transient failures from fatal ones.
@Test fun backendStatusCodePassesThrough() {
val backend = object : DriverBackend by StubDriverBackend("android") {
override fun inputText(text: String) {
override fun inputText(text: String): Unit =
throw io.grpc.Status.UNAVAILABLE
.withDescription("connection dropped mid-action")
.asRuntimeException()
}
}
val client = newClient(backend)
val thrown = kotlin.test.assertFailsWith<io.grpc.StatusRuntimeException> {
client.inputText(Text.newBuilder().setValue("hello").build())
}
val thrown =
kotlin.test.assertFailsWith<io.grpc.StatusRuntimeException> {
client.inputText(Text.newBuilder().setValue("hello").build())
}
assertEquals(io.grpc.Status.Code.UNAVAILABLE, thrown.status.code)
}
@@ -147,17 +177,19 @@ class DriverServiceTest {
// channel-level Unknown the runner cannot classify.
@Test fun nonExceptionThrowableMapsToInternal() {
val backend = object : DriverBackend by StubDriverBackend("android") {
override fun inputText(text: String) {
override fun inputText(text: String): Unit =
throw Throwable("only one gesture can be performed at a time")
}
}
val client = newClient(backend)
val thrown = kotlin.test.assertFailsWith<io.grpc.StatusRuntimeException> {
client.inputText(Text.newBuilder().setValue("hello").build())
}
val thrown =
kotlin.test.assertFailsWith<io.grpc.StatusRuntimeException> {
client.inputText(Text.newBuilder().setValue("hello").build())
}
assertEquals(io.grpc.Status.Code.INTERNAL, thrown.status.code)
assertTrue(thrown.status.description.orEmpty().contains("only one gesture"))
assertTrue(
thrown.status.description.orEmpty().contains("only one gesture"),
)
}
@Test fun reapOrphanIosRunnersKillsStrayXcodebuildAndRunnerApp() {
@@ -171,7 +203,16 @@ class DriverServiceTest {
assertEquals("pkill", commands[0][0])
assertTrue(commands[0][2].contains("test-without-building"))
assertTrue(commands[0][2].contains("UDID-1234"))
assertEquals(listOf("xcrun", "simctl", "terminate", "UDID-1234", IOS_XCTEST_RUNNER_BUNDLE_ID), commands[1])
assertEquals(
listOf(
"xcrun",
"simctl",
"terminate",
"UDID-1234",
IOS_XCTEST_RUNNER_BUNDLE_ID,
),
commands[1],
)
}
@Test fun reapOrphanIosRunnersReportsNothingFound() {
@@ -192,7 +233,9 @@ class DriverServiceTest {
// still executing fails instead of queuing.
val tapAction = {
if (!inFlight.compareAndSet(false, true)) {
throw IllegalStateException("only one gesture can be performed at a time")
throw IllegalStateException(
"only one gesture can be performed at a time",
)
}
invocations.incrementAndGet()
Thread.sleep(150)
@@ -211,7 +254,9 @@ class DriverServiceTest {
val tapAction = {
if (failedFirst.compareAndSet(false, true)) {
Thread.sleep(60)
throw IllegalStateException("only one gesture can be performed at a time")
throw IllegalStateException(
"only one gesture can be performed at a time",
)
}
landed.incrementAndGet()
Unit
@@ -226,21 +271,38 @@ class DriverServiceTest {
// directly.
val taps = mutableListOf<Pair<Int, Int>>()
val backend = object : DriverBackend {
override fun launch(bundleId: String, clearState: Boolean, env: Map<String, String>) {}
override fun launch(
bundleId: String,
clearState: Boolean,
env: Map<String, String>,
) {}
override fun terminate(bundleId: String) {}
override fun tap(x: Int, y: Int) { taps.add(x to y) }
override fun tap(x: Int, y: Int) {
taps.add(x to y)
}
override fun tapSelector(selector: String) {}
override fun inputText(text: String) {}
override fun eraseText(characterCount: Int) {}
override fun swipe(fromX: Int, fromY: Int, toX: Int, toY: Int, durationMillis: Long) {}
override fun swipe(
fromX: Int,
fromY: Int,
toX: Int,
toY: Int,
durationMillis: Long,
) {}
override fun pressKey(key: String) {}
override fun longPress(x: Int, y: Int) {}
override fun screenshot(): Triple<ByteArray, Int, Int> = Triple(byteArrayOf(), 0, 0)
override fun screenshot(): Triple<ByteArray, Int, Int> =
Triple(byteArrayOf(), 0, 0)
override fun hierarchy(): String = "{}"
override fun recentLogs(sinceUnixMillis: Long, minLevel: String): List<LogLine> = emptyList()
override fun recentLogs(
sinceUnixMillis: Long,
minLevel: String,
): List<LogLine> = emptyList()
override fun waitForIdle(durationMillis: Long) {}
override fun healthy(): Boolean = true
override fun metrics(bundleId: String): MetricsSample = MetricsSample(0.0, 0L, 0L)
override fun metrics(bundleId: String): MetricsSample =
MetricsSample(0.0, 0L, 0L)
}
val client = newClient(backend)
@@ -252,13 +314,16 @@ class DriverServiceTest {
val backend = StubDriverBackend("android")
val client = newClient(backend)
client.eraseText(EraseTextRequest.newBuilder().setCharacterCount(11).build())
client.eraseText(
EraseTextRequest.newBuilder().setCharacterCount(11).build(),
)
assertEquals(11, backend.lastEraseCharacterCount)
}
@Test fun screenshotReturnsBackendBytes() {
val backend = object : DriverBackend by StubDriverBackend("android") {
override fun screenshot(): Triple<ByteArray, Int, Int> = Triple(byteArrayOf(1, 2, 3), 1080, 2340)
override fun screenshot(): Triple<ByteArray, Int, Int> =
Triple(byteArrayOf(1, 2, 3), 1080, 2340)
}
val client = newClient(backend)
@@ -294,7 +359,13 @@ class DriverServiceTest {
@Test fun swipeForwardsEndpointsAndDuration() {
var observed: Quintuple<Int, Int, Int, Int, Long>? = null
val backend = object : DriverBackend by StubDriverBackend("android") {
override fun swipe(fromX: Int, fromY: Int, toX: Int, toY: Int, durationMillis: Long) {
override fun swipe(
fromX: Int,
fromY: Int,
toX: Int,
toY: Int,
durationMillis: Long,
) {
observed = Quintuple(fromX, fromY, toX, toY, durationMillis)
}
}
@@ -325,14 +396,18 @@ class DriverServiceTest {
@Test fun recentLogsReturnsBackendEntries() {
val backend = object : DriverBackend by StubDriverBackend("android") {
override fun recentLogs(sinceUnixMillis: Long, minLevel: String): List<LogLine> {
return listOf(LogLine(1, "E", "AndroidRuntime", "boom"))
}
override fun recentLogs(
sinceUnixMillis: Long,
minLevel: String,
): List<LogLine> = listOf(LogLine(1, "E", "AndroidRuntime", "boom"))
}
val client = newClient(backend)
val response = client.recentLogs(
RecentLogsRequest.newBuilder().setSinceUnixMillis(0).setLevelAtLeast("E").build(),
RecentLogsRequest.newBuilder()
.setSinceUnixMillis(0)
.setLevelAtLeast("E")
.build(),
)
assertEquals(1, response.entriesCount)
assertEquals("AndroidRuntime", response.getEntries(0).tag)
@@ -351,7 +426,9 @@ class DriverServiceTest {
}
val client = newClient(backend)
client.launch(LaunchRequest.newBuilder().setBundleId("com.launched").build())
client.launch(
LaunchRequest.newBuilder().setBundleId("com.launched").build(),
)
client.metrics(MetricsRequest.getDefaultInstance())
assertEquals("com.launched", sampled)
@@ -367,8 +444,12 @@ class DriverServiceTest {
}
val client = newClient(backend)
client.launch(LaunchRequest.newBuilder().setBundleId("com.launched").build())
client.metrics(MetricsRequest.newBuilder().setBundleId("com.other").build())
client.launch(
LaunchRequest.newBuilder().setBundleId("com.launched").build(),
)
client.metrics(
MetricsRequest.newBuilder().setBundleId("com.other").build(),
)
assertEquals("com.other", sampled)
}
@@ -0,0 +1,128 @@
package dev.sanderling.sidecar
import org.junit.Test
import kotlin.test.assertEquals
import kotlin.test.assertTrue
class EraseTextTest {
// maestro's eraseText sends one delete per character through its
// instrumentation, measured at 29.6 ms/char on the API 34 emulator: the
// 4096-character string the corpus types cost ~121s to clear, a fifth of a
// 20 minute run for one step. Selecting the field and deleting the
// selection is the same two key events whatever the field holds.
@Test fun aClearedFieldCostsTwoKeyEventsWhateverItsLength() {
for (length in listOf(1, 21, 512, 4096)) {
val sent = mutableListOf<String>()
eraseFocusedField(length, { sent.add(it) }) { 0 }
assertEquals(
listOf(SELECT_ALL_COMMAND, DELETE_KEY_COMMAND),
sent,
"length $length must not scale the erase",
)
}
}
// The dangerous failure is a fast erase that leaves characters behind: the
// next InputText appends to the residue and every reading downstream is
// wrong with nothing to catch it. A field the select-all did not clear is
// finished off per character rather than assumed empty.
@Test fun aFieldTheSelectAllMissedIsFinishedOffPerCharacter() {
val sent = mutableListOf<String>()
eraseFocusedField(4096, { sent.add(it) }) { 4096 }
assertEquals(SELECT_ALL_COMMAND, sent.first())
assertEquals(DELETE_KEY_COMMAND, sent[1])
assertEquals(
4096,
sent.drop(2).sumOf { command ->
command.removePrefix("input keyevent ").split(" ").size
},
"every character must still be deleted",
)
}
// Unknown is not empty. A tree that cannot name the focused field is no
// evidence the erase worked, and the safe way to be wrong is the delete
// that costs time rather than the one that leaves residue.
@Test fun aFieldThatCannotBeReadIsFinishedOffRatherThanAssumedEmpty() {
val sent = mutableListOf<String>()
eraseFocusedField(8, { sent.add(it) }) { null }
assertTrue(sent.size > 2, "an unverified erase must not stop at two")
}
@Test fun nothingToEraseIssuesNoKeysAtAll() {
val sent = mutableListOf<String>()
eraseFocusedField(0, { sent.add(it) }) { 0 }
eraseFocusedField(-1, { sent.add(it) }) { 0 }
assertEquals(emptyList(), sent)
}
// Batching is what keeps the fallback affordable: one round trip per batch
// rather than one per character, measured 2.3 ms/char against maestro's
// 29.6. The count must survive the batching exactly.
@Test fun deleteKeyCommandsBatchesWithoutLosingACharacter() {
for (count in listOf(1, 199, 200, 201, 4096)) {
val commands = deleteKeyCommands(count, DELETE_BATCH_KEYS)
val keys = commands.flatMap {
it.removePrefix("input keyevent ").split(" ")
}
assertEquals(count, keys.size, "count $count")
assertTrue(keys.all { it == "67" }, "only KEYCODE_DEL")
assertTrue(
commands.size <= (count + DELETE_BATCH_KEYS - 1) /
DELETE_BATCH_KEYS,
"count $count used ${commands.size} round trips",
)
}
}
// The erase targets the field the runner just tapped, so the length that
// decides whether it worked is that field's, not some other field that
// legitimately still holds text.
//
// The tree these fixtures copy is the one the device really returns, and
// it holds the trap: an open keyboard puts a SECOND focused node in the
// tree, one of the IME's own keys, and it carries no text. Reading the
// first focused node would call a field that still holds 4096 characters
// empty, which is the one wrong answer that matters here. maestro's tree
// also carries no "editable" attribute at all, so the text field has to be
// recognised by its class.
@Test fun theFocusedFieldIsReadPastTheKeyboardsOwnFocusedKey() {
assertEquals(4096, focusedEditableTextLength(TREE_WITH_FULL_FIELD))
assertEquals(0, focusedEditableTextLength(TREE_WITH_EMPTY_FIELD))
}
@Test fun aTreeWithNoFocusedFieldReadsAsUnknown() {
assertEquals(null, focusedEditableTextLength(TREE_WITH_NO_FOCUS))
assertEquals(null, focusedEditableTextLength(""))
assertEquals(null, focusedEditableTextLength("not json"))
}
}
// The keyboard's own focused key, exactly as the device reports it: focused,
// no text, and not a text field.
private val IME_FOCUSED_KEY =
"""
{"attributes":{"text":"","resource-id":
"com.google.android.inputmethod.latin:id/key_pos_header_access",
"focused":"true","class":"android.widget.FrameLayout"},"children":[]}
""".trimIndent()
private fun tree(focusedText: String?, otherText: String): String {
val field = focusedText?.let {
""",{"attributes":{"resource-id":"AccountNameField","focused":"true",
"class":"android.widget.EditText","text":"$it"},"children":[]}"""
} ?: ""
return """
{"attributes":{"resource-id":"AddAccountScreen"},"children":[
$IME_FOCUSED_KEY $field,
{"attributes":{"resource-id":"OtherField","focused":"false",
"class":"android.widget.EditText","text":"$otherText"},
"children":[]}]}
""".trimIndent()
}
private val TREE_WITH_FULL_FIELD = tree("a".repeat(4096), "keep me")
private val TREE_WITH_EMPTY_FIELD = tree("", "keep me")
private val TREE_WITH_NO_FOCUS = tree(null, "keep me")
@@ -21,11 +21,17 @@ class IdleDetectionTest {
assertFalse(StubDriverBackend.isAnimationCountIdle("3\n"))
}
@Test fun idleWhenOutputEmpty() {
assertTrue(StubDriverBackend.isAnimationCountIdle(""))
// A dumpsys that said nothing does not say the device is still. Reading
// absence as idle is how a settle returns instantly on a degraded link and
// hands the runner a screen caught mid-animation; the caller bounds its own
// wait, so the cost of being wrong the other way is a wait it already
// budgeted for. The exception path of the same probe already answers false.
@Test fun unreadableOutputIsNotIdle() {
assertFalse(StubDriverBackend.isAnimationCountIdle(""))
assertFalse(StubDriverBackend.isAnimationCountIdle(" \n"))
}
@Test fun idleWhenOutputIsNotANumber() {
assertTrue(StubDriverBackend.isAnimationCountIdle("error: no service"))
@Test fun unparseableOutputIsNotIdle() {
assertFalse(StubDriverBackend.isAnimationCountIdle("error: no service"))
}
}
@@ -32,7 +32,8 @@ class InputTextTest {
val fallback = listOf(
"Emergency Fund", "🙂🔥💸", " ", "\t\n", "'; DROP TABLE--",
"<script>alert(1)</script>", "../../etc/passwd", "%s%n", "",
"-1", "-rf", // a leading dash could be read as an option by `input text`
// a leading dash could be read as an option by `input text`
"-1", "-rf",
)
for (text in fallback) {
assertTrue(
@@ -190,12 +191,12 @@ class InputTextTest {
@Test fun parseResumedPackageReadsEachResumedActivityWording() {
val cases = mapOf(
" topResumedActivity=ActivityRecord{8b u0 app.folio/.MainActivity t42}" to
"app.folio",
" mResumedActivity: ActivityRecord{1c u0 com.example.app/.Home t9}" to
"com.example.app",
" ResumedActivity: ActivityRecord{2d u0 app.folio/com.folio.Detail t9}" to
"app.folio",
" topResumedActivity=ActivityRecord{8b u0 " +
"app.folio/.MainActivity t42}" to "app.folio",
" mResumedActivity: ActivityRecord{1c u0 " +
"com.example.app/.Home t9}" to "com.example.app",
" ResumedActivity: ActivityRecord{2d u0 " +
"app.folio/com.folio.Detail t9}" to "app.folio",
)
for ((line, want) in cases) {
assertEquals(want, parseResumedPackage(line), line)
@@ -206,10 +207,249 @@ class InputTextTest {
)
}
@Test fun aReadableDumpsysNamesTheResumedPackage() {
val warnings = mutableListOf<String>()
assertEquals(
"app.folio",
typingOwner(RESUMED_DUMPSYS, "app.folio") { warnings.add(it) },
)
assertTrue(warnings.isEmpty(), "nothing to report when the read worked")
}
// A dumpsys that said nothing is not evidence that focus is fine. Handing
// typeChunks a null owner turns the guard off outright, and the keystrokes
// then go wherever the foreground happens to be.
@Test fun anUnreadableDumpsysGuardsWithTheLaunchedBundle() {
val warnings = mutableListOf<String>()
assertEquals(
"app.folio",
typingOwner("", "app.folio") { warnings.add(it) },
)
assertEquals(1, warnings.size, "a degraded guard must not be silent")
assertTrue(warnings.single().contains("app.folio"), warnings.single())
}
// Wording no marker matches is the same "we do not know" as an empty read.
@Test fun dumpsysWithNoResumedMarkerGuardsWithTheLaunchedBundle() {
assertEquals(
"app.folio",
typingOwner(" mFocusedApp=null\n nothing here\n", "app.folio") {},
)
}
// The whole point of the fallback: on a link that cannot answer, typing is
// still guarded, so a foreground that was stolen stops it after the first
// chunk instead of spraying the rest into whatever took focus.
@Test fun unreadableLinkStillStopsTypingWhenFocusWasStolen() {
val owner = typingOwner("", "app.folio") {}
val sent = mutableListOf<String>()
typeChunks(listOf("aaa", "bbb", "ccc"), owner, {
"com.android.launcher"
}) { sent.add(it) }
assertEquals(
listOf("aaa"),
sent,
"an unguarded type would have sent every chunk to the launcher",
)
}
// And the other half of the trade: the fallback must not turn a degraded
// link into a run that types nothing. A no-op InputText on every step is a
// green run that tested nothing, which is worse than the spray it avoids.
@Test fun unreadableLinkStillTypesWhenTheAppKeepsFocus() {
val owner = typingOwner("", "app.folio") {}
val sent = mutableListOf<String>()
val typed = typeChunks(listOf("aaa", "bbb", "cc"), owner, {
"app.folio"
}) { sent.add(it) }
assertEquals(listOf("aaa", "bbb", "cc"), sent)
assertEquals(8, typed)
}
// With no launch recorded there is nothing to guard against, and the honest
// answer is to say the guard is off rather than imply it ran.
@Test fun noLaunchedBundleLeavesTheGuardOffAndSaysSo() {
val warnings = mutableListOf<String>()
assertEquals(null, typingOwner("", null) { warnings.add(it) })
assertEquals(1, warnings.size)
}
@Test fun maestroKeyForResolvesAndRejects() {
assertEquals(maestro.KeyCode.BACK, maestroKeyFor("back"))
assertEquals(maestro.KeyCode.BACK, maestroKeyFor("BACK"))
assertEquals(maestro.KeyCode.ENTER, maestroKeyFor("enter"))
assertFailsWith<IllegalArgumentException> { maestroKeyFor("zorp") }
}
// An IME left open hides every app node beneath it from the hierarchy, so a
// form whose submit button sits under the keyboard becomes unreachable for
// as long as the fuzzer keeps typing into it. Typing must close the
// keyboard it raised.
@Test fun dismissSoftKeyboardClosesAnOpenIme() {
val commands = mutableListOf<String>()
dismissSoftKeyboard {
commands.add(it)
IME_OPEN_DUMPSYS
}
assertEquals(
listOf("dumpsys input_method", "input keyevent 4"),
commands,
)
}
// The guard is the dangerous half: BACK is only swallowed by an open IME,
// so dismissing unconditionally would turn every InputText into a back
// press and walk the fuzzer straight out of the screen it was filling in.
@Test fun dismissSoftKeyboardSendsNoBackWhenNoImeIsOpen() {
val commands = mutableListOf<String>()
dismissSoftKeyboard {
commands.add(it)
IME_CLOSED_DUMPSYS
}
assertEquals(listOf("dumpsys input_method"), commands)
}
// Typing is not the only thing that raises the keyboard: tapping a field
// raises it too, and nothing was closing that one. The snapshot the picker
// chooses from is missing every app node the keyboard covers, so the step
// spends its budget choosing between the few targets left. Closing it
// before the tree is read is what gives the step its targets back.
@Test fun aKeyboardInTheTreeIsClosedBeforeTheTreeIsReturned() {
var backs = 0
val reads = mutableListOf<String>()
val settled = treeWithoutKeyboard(
IME_TREE,
IME_PACKAGE,
dismiss = { backs++ },
reread = { APP_TREE.also { reads.add(it) } },
sleep = {},
)
assertEquals(APP_TREE, settled)
assertEquals(1, backs, "one BACK closes the keyboard")
assertEquals(1, reads.size, "the tree is re-read once it is gone")
}
// The guard has to be the tree itself. BACK with no keyboard open
// navigates out of the screen, so a snapshot that pressed it on every read
// would walk the fuzzer backwards out of the app a step at a time.
@Test fun aTreeWithNoKeyboardIsReturnedUntouched() {
var backs = 0
var reads = 0
val settled = treeWithoutKeyboard(
APP_TREE,
IME_PACKAGE,
dismiss = { backs++ },
reread = {
reads++
APP_TREE
},
sleep = {},
)
assertEquals(APP_TREE, settled)
assertEquals(0, backs, "no keyboard in the tree means no BACK")
assertEquals(0, reads, "and no second hierarchy read to pay for")
}
// An unknown IME package is the honest "cannot tell", and the safe way to
// be wrong is to leave the keyboard up rather than press BACK blind.
@Test fun anUnknownImePackageSendsNoBack() {
var backs = 0
assertEquals(
IME_TREE,
treeWithoutKeyboard(
IME_TREE,
null,
dismiss = { backs++ },
reread = { APP_TREE },
sleep = {},
),
)
assertEquals(0, backs)
}
// A keyboard the app puts straight back gets ONE back press, not one per
// re-read. The flag behind the older dismissal lags a BACK by up to 0.6s,
// and a burst of them inside that window is how a dismissal turns into
// navigation.
@Test fun aKeyboardThatStaysUpIsNotBackPressedRepeatedly() {
var backs = 0
var reads = 0
val settled = treeWithoutKeyboard(
IME_TREE,
IME_PACKAGE,
dismiss = { backs++ },
reread = {
reads++
IME_TREE
},
sleep = {},
)
assertEquals(IME_TREE, settled, "the caller still gets a tree")
assertEquals(1, backs)
assertTrue(
reads in 1..KEYBOARD_DISMISS_READS,
"bounded re-reads, got $reads",
)
}
@Test fun imePackageOfReadsTheComponentAndRejectsNonsense() {
assertEquals(
"com.google.android.inputmethod.latin",
imePackageOf(
"com.google.android.inputmethod.latin/.LatinIME\n",
),
)
assertEquals(null, imePackageOf("null"))
assertEquals(null, imePackageOf(""))
assertEquals(null, imePackageOf(" \n"))
}
@Test fun treeShowsImeMatchesTheImesOwnViewIdsOnly() {
assertTrue(treeShowsIme(IME_TREE, IME_PACKAGE))
assertTrue(!treeShowsIme(APP_TREE, IME_PACKAGE))
}
}
private val RESUMED_DUMPSYS =
"""
mFocusedApp=ActivityRecord{1a u0 app.folio/.MainActivity t14}
topResumedActivity=ActivityRecord{f3 u0 app.folio/.MainActivity t14}
""".trimIndent()
private const val IME_PACKAGE = "com.google.android.inputmethod.latin"
private val APP_TREE =
"""
{"attributes":{"resource-id":"AddAccountScreen"},"children":[
{"attributes":{"resource-id":"AccountNameField"},"children":[]},
{"attributes":{"resource-id":"AddAccountSubmit"},"children":[]}]}
""".trimIndent()
// The submit control is gone: an open keyboard does not merely cover the node,
// it takes it out of the tree the picker enumerates.
private val IME_TREE =
"""
{"attributes":{"resource-id":"AddAccountScreen"},"children":[
{"attributes":{"resource-id":"AccountNameField"},"children":[]},
{"attributes":{
"resource-id":"com.google.android.inputmethod.latin:id/keyboard_holder"
},"children":[]}]}
""".trimIndent()
private val IME_OPEN_DUMPSYS =
"""
mCurMethodId=com.google.android.inputmethod.latin/.LatinIME
mInputShown=true
mSystemReady=true mInteractive=true
""".trimIndent()
private val IME_CLOSED_DUMPSYS =
"""
mCurMethodId=com.google.android.inputmethod.latin/.LatinIME
mInputShown=false
mSystemReady=true mInteractive=true
""".trimIndent()
@@ -12,28 +12,40 @@ class ResolveActivityTest {
com.example.app/.MainActivity
""".trimIndent()
val activity = StubDriverBackend.parseResolvedActivity("com.example.app", output)
val activity = StubDriverBackend.parseResolvedActivity(
"com.example.app",
output,
)
assertEquals(".MainActivity", activity)
}
@Test fun extractsFullyQualifiedActivity() {
val output = "com.example.app/com.example.app.ui.LaunchActivity"
val activity = StubDriverBackend.parseResolvedActivity("com.example.app", output)
val activity = StubDriverBackend.parseResolvedActivity(
"com.example.app",
output,
)
assertEquals("com.example.app.ui.LaunchActivity", activity)
}
@Test fun returnsNullWhenPackageNotFound() {
val output = "No activity found"
val activity = StubDriverBackend.parseResolvedActivity("com.example.app", output)
val activity = StubDriverBackend.parseResolvedActivity(
"com.example.app",
output,
)
assertNull(activity)
}
@Test fun doesNotMatchDifferentPackagePrefix() {
val output = "other.pkg/.MainActivity"
val activity = StubDriverBackend.parseResolvedActivity("com.example.app", output)
val activity = StubDriverBackend.parseResolvedActivity(
"com.example.app",
output,
)
assertNull(activity)
}
}
@@ -13,10 +13,13 @@ class RouteTransitionTest {
private fun screen(id: String, child: String = "") =
"""{"attributes":{"resource-id":"$id"},"children":[$child]}"""
private fun tree(vararg children: String) =
"""{"attributes":{"resource-id":"root"},"children":[${children.joinToString(",")}]}"""
private fun tree(vararg children: String): String {
val joined = children.joinToString(",")
return """{"attributes":{"resource-id":"root"},"children":[$joined]}"""
}
private val crossFade = tree(screen("LedgerScreen"), screen("AddTransactionScreen"))
private val crossFade =
tree(screen("LedgerScreen"), screen("AddTransactionScreen"))
private val landed = tree(screen("AddTransactionScreen"))
@Test fun waitsForTheCrossFadeToLandAndReturnsTheLandedTree() {
@@ -29,8 +32,15 @@ class RouteTransitionTest {
reads++
if (reads <= 3) crossFade else landed
}
assertTrue(reads > 3, "must keep reading until the fade lands, reads=$reads")
assertEquals(1, countRouteScreens(settled), "must return a tree with one route")
assertTrue(
reads > 3,
"must keep reading until the fade lands, reads=$reads",
)
assertEquals(
1,
countRouteScreens(settled),
"must return a tree with one route",
)
}
@Test fun settledFrameCostsExactlyOneRead() {
@@ -54,13 +64,21 @@ class RouteTransitionTest {
// would burn the whole poll budget and still hand over a frame the
// runner refuses to act on.
val nested = tree(screen("HomeScreen", screen("HomeScreen")))
assertEquals(1, countRouteScreens(nested), "the same id twice is one route")
assertEquals(
1,
countRouteScreens(nested),
"the same id twice is one route",
)
var reads = 0
awaitSettledTree {
reads++
nested
}
assertEquals(1, reads, "a repeated route id must not be treated as a transition")
assertEquals(
1,
reads,
"a repeated route id must not be treated as a transition",
)
}
@Test fun aLayoutThatKeepsTwoRoutesIsBoundedByTheCap() {
@@ -78,7 +96,11 @@ class RouteTransitionTest {
elapsed < TRANSITION_POLL_CAP_MILLIS + 1000L,
"must stop at the cap, elapsed=${elapsed}ms",
)
assertEquals(crossFade, settled, "the caller still gets a tree to record")
assertEquals(
crossFade,
settled,
"the caller still gets a tree to record",
)
}
@Test fun capCoversTheNavHostFadePlusTheStreak() {
@@ -89,20 +111,29 @@ class RouteTransitionTest {
val fadeMillis = 700L
val start = System.currentTimeMillis()
val settled = awaitSettledTree {
if (System.currentTimeMillis() - start < fadeMillis) crossFade else landed
if (System.currentTimeMillis() - start < fadeMillis) {
crossFade
} else {
landed
}
}
val elapsed = System.currentTimeMillis() - start
assertEquals(landed, settled, "must hand back the landed tree, not the fade")
assertEquals(
landed,
settled,
"must hand back the landed tree, not the fade",
)
assertTrue(
elapsed >= fadeMillis,
"cannot have settled before the fade ended, elapsed=${elapsed}ms",
)
assertTrue(
elapsed < TRANSITION_POLL_CAP_MILLIS,
"the ${TRANSITION_POLL_CAP_MILLIS}ms cap has to leave room for a ${fadeMillis}ms " +
"fade and the ${TRANSITION_STABLE_STREAK_MILLIS}ms streak after it, but the " +
"wait ran to the cap instead, elapsed=${elapsed}ms",
"the ${TRANSITION_POLL_CAP_MILLIS}ms cap has to leave room for " +
"a ${fadeMillis}ms fade and the " +
"${TRANSITION_STABLE_STREAK_MILLIS}ms streak after it, but " +
"the wait ran to the cap instead, elapsed=${elapsed}ms",
)
}
}
@@ -6,7 +6,10 @@ import kotlin.test.assertTrue
class SidecarServerTest {
@Test
fun startBindsEphemeralPortAndStopReleasesIt() {
val server = SidecarServer(port = 0, service = DriverService(backend = StubDriverBackend("android")))
val server = SidecarServer(
port = 0,
service = DriverService(backend = StubDriverBackend("android")),
)
val boundPort = server.start()
try {
assertTrue(boundPort > 0, "expected ephemeral port, got $boundPort")
@@ -19,14 +19,22 @@ class SnapshotHandlerTest {
@get:Rule val grpcCleanup: GrpcCleanupRule = GrpcCleanupRule()
private fun newClient(backend: DriverBackend): DriverGrpc.DriverBlockingStub {
private fun newClient(
backend: DriverBackend,
): DriverGrpc.DriverBlockingStub {
val serverName = InProcessServerBuilder.generateName()
val service = DriverService(platform = "android", backend = backend)
grpcCleanup.register(
InProcessServerBuilder.forName(serverName).directExecutor().addService(service).build().start(),
InProcessServerBuilder.forName(serverName)
.directExecutor()
.addService(service)
.build()
.start(),
)
val channel: ManagedChannel = grpcCleanup.register(
InProcessChannelBuilder.forName(serverName).directExecutor().build(),
InProcessChannelBuilder.forName(serverName)
.directExecutor()
.build(),
)
return DriverGrpc.newBlockingStub(channel)
}
@@ -37,8 +45,10 @@ class SnapshotHandlerTest {
// forward those calls to the delegate, not these overrides. Override
// snapshot() directly so the test exercises the wire path end-to-end.
val backend = object : DriverBackend by StubDriverBackend("android") {
override fun snapshot(): SnapshotSample =
SnapshotSample("{\"x\":1}", Triple(byteArrayOf(7, 8, 9), 1080, 2340))
override fun snapshot(): SnapshotSample = SnapshotSample(
"{\"x\":1}",
Triple(byteArrayOf(7, 8, 9), 1080, 2340),
)
}
val client = newClient(backend)
@@ -55,13 +65,23 @@ class SnapshotHandlerTest {
// aligned with the final hierarchy snapshot the runner accepts.
val callOrder = mutableListOf<String>()
val backend = object : DriverBackend {
override fun launch(bundleId: String, clearState: Boolean, env: Map<String, String>) {}
override fun launch(
bundleId: String,
clearState: Boolean,
env: Map<String, String>,
) {}
override fun terminate(bundleId: String) {}
override fun tap(x: Int, y: Int) {}
override fun tapSelector(selector: String) {}
override fun inputText(text: String) {}
override fun eraseText(characterCount: Int) {}
override fun swipe(fromX: Int, fromY: Int, toX: Int, toY: Int, durationMillis: Long) {}
override fun swipe(
fromX: Int,
fromY: Int,
toX: Int,
toY: Int,
durationMillis: Long,
) {}
override fun pressKey(key: String) {}
override fun longPress(x: Int, y: Int) {}
override fun screenshot(): Triple<ByteArray, Int, Int> {
@@ -72,10 +92,14 @@ class SnapshotHandlerTest {
callOrder.add("hierarchy")
return "{}"
}
override fun recentLogs(sinceUnixMillis: Long, minLevel: String): List<LogLine> = emptyList()
override fun recentLogs(
sinceUnixMillis: Long,
minLevel: String,
): List<LogLine> = emptyList()
override fun waitForIdle(durationMillis: Long) {}
override fun healthy(): Boolean = true
override fun metrics(bundleId: String): MetricsSample = MetricsSample(0.0, 0L, 0L)
override fun metrics(bundleId: String): MetricsSample =
MetricsSample(0.0, 0L, 0L)
}
backend.snapshot()
assertEquals(listOf("hierarchy", "screenshot"), callOrder)
@@ -88,7 +112,8 @@ class SnapshotHandlerTest {
val maxObserved = AtomicInteger(0)
val callCount = AtomicInteger(0)
val lock = ReentrantLock()
val recordingBackend = object : DriverBackend by StubDriverBackend("android") {
val delegate = StubDriverBackend("android")
val recordingBackend = object : DriverBackend by delegate {
override fun snapshot(): SnapshotSample {
val now = inFlight.incrementAndGet()
try {
@@ -109,9 +134,13 @@ class SnapshotHandlerTest {
// Use a real (multi-threaded) executor on the server side so the service
// is not artificially serialized by directExecutor.
val serverName = InProcessServerBuilder.generateName()
val service = DriverService(platform = "android", backend = recordingBackend)
val service =
DriverService(platform = "android", backend = recordingBackend)
grpcCleanup.register(
InProcessServerBuilder.forName(serverName).addService(service).build().start(),
InProcessServerBuilder.forName(serverName)
.addService(service)
.build()
.start(),
)
val channel: ManagedChannel = grpcCleanup.register(
InProcessChannelBuilder.forName(serverName).build(),
@@ -13,7 +13,10 @@ class StabilityPollTest {
elapsed >= MIN_STABLE_STREAK_MILLIS,
"must observe a stable streak of at least ${MIN_STABLE_STREAK_MILLIS}ms, elapsed=${elapsed}ms",
)
assertTrue(elapsed < 3000L, "should not run to cap when stable, elapsed=${elapsed}ms")
assertTrue(
elapsed < 3000L,
"should not run to cap when stable, elapsed=${elapsed}ms",
)
}
@Test fun slowSnapshotReadsDoNotEatTheStreak() {
@@ -38,8 +41,9 @@ class StabilityPollTest {
val observedQuiet = sampleStarts.last() - sampleEnds.first()
assertTrue(
observedQuiet >= MIN_STABLE_STREAK_MILLIS,
"the poll returned having observed only ${observedQuiet}ms of quiet, not " +
"${MIN_STABLE_STREAK_MILLIS}ms; starts=$sampleStarts ends=$sampleEnds",
"the poll returned having observed only ${observedQuiet}ms of " +
"quiet, not ${MIN_STABLE_STREAK_MILLIS}ms; " +
"starts=$sampleStarts ends=$sampleEnds",
)
assertTrue(
sampleStarts.size >= 3,
@@ -60,23 +64,27 @@ class StabilityPollTest {
calls++
when {
calls <= 2 -> "calm"
calls == 3 -> {
transientAt = System.currentTimeMillis()
"transient"
}
else -> "stable"
}
}
val sinceTransition = System.currentTimeMillis() - transientAt
assertTrue(
calls >= 8,
"after the transition the poll needs a fresh matching pair and then a full " +
"${MIN_STABLE_STREAK_MILLIS}ms of quiet, which is 8 samples, got $calls",
"after the transition the poll needs a fresh matching pair and " +
"then a full ${MIN_STABLE_STREAK_MILLIS}ms of quiet, which " +
"is 8 samples, got $calls",
)
assertTrue(
sinceTransition >= MIN_STABLE_STREAK_MILLIS,
"the calm prefix must not count: a full ${MIN_STABLE_STREAK_MILLIS}ms streak has to " +
"start over after the transition, returned ${sinceTransition}ms after it",
"the calm prefix must not count: a full " +
"${MIN_STABLE_STREAK_MILLIS}ms streak has to start over " +
"after the transition, returned ${sinceTransition}ms after it",
)
}
@@ -105,7 +113,10 @@ class StabilityPollTest {
"frame-$calls"
}
val elapsed = System.currentTimeMillis() - start
assertTrue(elapsed in budget..(budget + 1000L), "expected to hit cap, elapsed=$elapsed")
assertTrue(
elapsed in budget..(budget + 1000L),
"expected to hit cap, elapsed=$elapsed",
)
}
@Test fun zeroBudgetReturnsImmediately() {
@@ -117,7 +128,8 @@ class StabilityPollTest {
assertEquals(0, calls)
}
@Test fun structuralHashIgnoresBoundsAndIdenticalForSemanticallyEqualTrees() {
@Test
fun structuralHashIgnoresBoundsAndIdenticalForSemanticallyEqualTrees() {
val a = """
{"attributes":{"resource-id":"LoginScreen","bounds":"[0,0,1080,2340]"},
"children":[
@@ -130,13 +142,24 @@ class StabilityPollTest {
{"attributes":{"resource-id":"LoginEmail","bounds":"[10,11,1070,101]","text":"a@b"},"children":[]}
]}
""".trimIndent()
assertEquals(structuralHash(a), structuralHash(b), "bounds-only flicker must not change hash")
assertEquals(
structuralHash(a),
structuralHash(b),
"bounds-only flicker must not change hash",
)
}
@Test fun structuralHashDiffersWhenContentChanges() {
val a = """{"attributes":{"resource-id":"LoginEmail","text":"a@b"},"children":[]}"""
val b = """{"attributes":{"resource-id":"LoginEmail","text":"c@d"},"children":[]}"""
assertTrue(structuralHash(a) != structuralHash(b), "text change must alter hash")
val a = """
{"attributes":{"resource-id":"LoginEmail","text":"a@b"},"children":[]}
""".trimIndent()
val b = """
{"attributes":{"resource-id":"LoginEmail","text":"c@d"},"children":[]}
""".trimIndent()
assertTrue(
structuralHash(a) != structuralHash(b),
"text change must alter hash",
)
}
@Test fun stabilitySnapshotReturnsNullDuringNavHostCrossFade() {
@@ -160,7 +183,10 @@ class StabilityPollTest {
]}
""".trimIndent()
val hash = stabilitySnapshot(singleScreen)
assertTrue(hash != null && hash.isNotBlank(), "single-screen tree must yield a hash, got $hash")
assertTrue(
hash != null && hash.isNotBlank(),
"single-screen tree must yield a hash, got $hash",
)
}
@Test fun stabilitySnapshotIgnoresNonRouteAttributeValues() {
@@ -173,7 +199,10 @@ class StabilityPollTest {
{"attributes":{"text":"Welcome to MyScreen"},"children":[]}
]}
""".trimIndent()
assertTrue(stabilitySnapshot(tree) != null, "non-route attribute must not be counted as a screen")
assertTrue(
stabilitySnapshot(tree) != null,
"non-route attribute must not be counted as a screen",
)
}
@Test fun countRouteScreensCountsTestTagAndIdentifier() {
@@ -12,14 +12,15 @@ import kotlin.test.assertTrue
class WdaRecoveryTest {
private fun recovery(
isAlive: () -> Boolean,
restart: () -> Unit,
) = WdaRecovery(isAlive = isAlive, restart = restart, log = {})
private fun recovery(isAlive: () -> Boolean, restart: () -> Unit) =
WdaRecovery(isAlive = isAlive, restart = restart, log = {})
@Test fun aliveChannelSkipsRestartAndRetriesReads() {
val restarts = AtomicInteger(0)
val recovery = recovery(isAlive = { true }, restart = { restarts.incrementAndGet() })
val recovery = recovery(
isAlive = { true },
restart = { restarts.incrementAndGet() },
)
var calls = 0
val result = recovery.run(replay = true) {
@@ -35,10 +36,15 @@ class WdaRecoveryTest {
@Test fun aliveChannelSurfacesUnavailableForActions() {
val restarts = AtomicInteger(0)
val recovery = recovery(isAlive = { true }, restart = { restarts.incrementAndGet() })
val recovery = recovery(
isAlive = { true },
restart = { restarts.incrementAndGet() },
)
val thrown = assertFailsWith<io.grpc.StatusRuntimeException> {
recovery.run(replay = false) { throw IOException("connection reset") }
recovery.run(replay = false) {
throw IOException("connection reset")
}
}
assertEquals(io.grpc.Status.Code.UNAVAILABLE, thrown.status.code)
@@ -101,7 +107,9 @@ class WdaRecoveryTest {
)
val thrown = assertFailsWith<IllegalStateException> {
recovery.run(replay = true) { throw IOException("connection refused") }
recovery.run(replay = true) {
throw IOException("connection refused")
}
}
assertTrue(thrown.message.orEmpty().contains("WDA reconnect failed"))
@@ -116,7 +124,9 @@ class WdaRecoveryTest {
)
assertFailsWith<IllegalArgumentException> {
recovery.run(replay = true) { throw IllegalArgumentException("bad selector") }
recovery.run(replay = true) {
throw IllegalArgumentException("bad selector")
}
}
assertEquals(0, restarts.get())
@@ -127,7 +137,9 @@ class WdaRecoveryTest {
val recovery = recovery(isAlive = { true }, restart = {})
val thrown = assertFailsWith<io.grpc.StatusRuntimeException> {
recovery.run(replay = true) { throw IOException("connection reset") }
recovery.run(replay = true) {
throw IOException("connection reset")
}
}
assertEquals(io.grpc.Status.Code.UNAVAILABLE, thrown.status.code)
+84
View File
@@ -23,6 +23,7 @@ import (
"github.com/priyanshujain/sanderling/internal/bundler"
"github.com/priyanshujain/sanderling/internal/driver"
"github.com/priyanshujain/sanderling/internal/driver/chrome"
"github.com/priyanshujain/sanderling/internal/hierarchy"
chromerunner "github.com/priyanshujain/sanderling/internal/runner"
"github.com/priyanshujain/sanderling/internal/trace"
"github.com/priyanshujain/sanderling/internal/verifier"
@@ -222,3 +223,86 @@ func TestBrowserUndefinedExtractorStaysUndefined(t *testing.T) {
t.Fatalf("nothing was ever tapped, so the property above held vacuously; violations=%v", violations)
}
}
// One page, one selector, two hosts, two answers.
//
// The V8 host resolves state.ax.find against the live DOM; the goja host
// resolves the same selector against the hierarchy dump. The fixture puts a
// shadow-hosted #x above a light-DOM #x, the one shape where the two walks can
// disagree, and on web it is V8's answer that reaches the properties. Each host
// is driven through its production path (EvaluateExtractors in the page,
// PushSnapshot over the dump) and neither is asked what the other said, so the
// comparison is evidence rather than an assertion about one of them.
func TestBrowserAxFindAgreesAcrossHosts(t *testing.T) {
server := httptest.NewServer(http.FileServer(http.Dir(testdataDir(t))))
t.Cleanup(server.Close)
gojaBundle, webBundle := bundleSpec(t, filepath.Join(testdataDir(t), "find-order", "spec.ts"))
driverInstance := chrome.New()
t.Cleanup(func() {
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
_ = driverInstance.Terminate(ctx)
})
ctx, cancel := context.WithTimeout(context.Background(), 60*time.Second)
defer cancel()
if err := driverInstance.Launch(ctx, server.URL+"/find-order/", false, nil); err != nil {
t.Fatalf("launch: %v", err)
}
if err := driverInstance.InstallBundle(ctx, webBundle); err != nil {
t.Fatalf("install web bundle: %v", err)
}
readings, err := driverInstance.EvaluateExtractors(ctx)
if err != nil {
t.Fatalf("evaluate extractors in the page: %v", err)
}
fromV8 := string(readings[0])
dump, err := driverInstance.Hierarchy(ctx)
if err != nil {
t.Fatalf("hierarchy: %v", err)
}
tree, err := hierarchy.Parse(dump)
if err != nil {
t.Fatalf("parse hierarchy: %v", err)
}
verifierInstance, err := verifier.New(
verifier.WithSeed(fixtureSeed),
verifier.WithPlatform("web"),
)
if err != nil {
t.Fatalf("verifier: %v", err)
}
if err := verifierInstance.Load(string(gojaBundle)); err != nil {
t.Fatalf("load spec: %v", err)
}
if err := verifierInstance.PushSnapshot(verifier.SnapshotInput{Tree: tree}); err != nil {
t.Fatalf("push snapshot: %v", err)
}
if count := verifierInstance.ExtractorCount(); count != 1 {
t.Fatalf("the goja host registered %d extractors, want the fixture's 1", count)
}
// ChangedExtractors omits an extractor whose reading is null and unchanged,
// which is exactly what a selector resolving nothing produces. With the
// count checked above, an absent entry is a null reading and not a missing
// extractor, so reporting it as null names the real failure.
fromGoja := "null"
if change, ok := verifierInstance.ChangedExtractors()["found"]; ok {
fromGoja = string(change.Curr)
}
// Pinned, not just compared: two hosts that both resolved nothing would
// agree on undefined and prove nothing about the walk.
if fromGoja != `"shadow"` {
t.Errorf("the goja host read %s off the dump, want the shadow-hosted %q", fromGoja, "shadow")
}
if fromV8 != fromGoja {
t.Fatalf(
"one page, one selector, two answers: the V8 host read %s and the goja host read %s",
fromV8,
fromGoja,
)
}
}
+16
View File
@@ -0,0 +1,16 @@
<!doctype html>
<html>
<body>
<!-- Two elements share the id, one inside a shadow root on the mount and
one later in the light DOM. The hierarchy dump orders a host's shadow
children before its light ones, so a pre-order search there reaches the
shadow one first; a light-DOM sweep that only descends afterwards
reaches the other. The page exists to make the two walks disagree. -->
<div id="mount" style="width: 200px; height: 80px"></div>
<span id="x">light</span>
<script>
document.getElementById("mount").attachShadow({ mode: "open" }).innerHTML =
'<span id="x">shadow</span>';
</script>
</body>
</html>
+17
View File
@@ -0,0 +1,17 @@
import { always, extract, taps } from "@sanderling/spec";
// Which of the two #x a selector means is the whole fixture. The reading is
// compared between the two hosts by TestBrowserAxFindAgreesAcrossHosts, which
// drives each host's production path and never asks one what the other said.
//
// Written in the object form on purpose. It used to reach the goja host as a
// plain attribute filter looking for an `id` attribute a dump never carries
// (the web dump files the DOM id under resource-id), so it resolved nothing
// there while the V8 host resolved it against the live DOM.
const found = extract((s) => s.ax.find({ id: "x" })?.text).named("found");
const findsTheShadowMatch = always(() => found.current === "shadow");
export const properties = { findsTheShadowMatch };
export const actionsRoot = taps;