Files
sanderling/internal/runner/runner_test.go
pj b02e86b2e3 ci: dispatch workflows for folio and the replay ui (#73)
* feat(runner): stop the step loop at the first violation on request

* feat(testrun): report violations as a typed error under exit-on-violation

* feat(cli): add --exit-on-violation and exit 2 when it fires

* docs(cli): document --exit-on-violation, --max-steps, and exit codes

* fix(web): enumerate and query across shadow roots in both producers

* test(chrome): compare both producers on a shadow-dom parity page

* test(browser): drive a canvas-under-shadow-root fixture end to end

* fix(web): select the focused field inside a shadow root before typing

* fix(web): report the pathname as the screen when there is no hash route

* fix(web): settle on dom quiescence instead of returning at body ready

* feat(replay-ui): add data-testid hooks the dogfood spec drives

* feat(replay-ui): add the dogfood spec sanderling runs against the replay ui

* fix(replay-ui): scope the screenshot property to the named state panel

* chore(make): add per-platform sanderling build targets

* ci: add dispatch workflows for folio and the replay ui

* docs: describe the dispatch workflows and how to read a failure

* ci(folio): give the ios leg its jdk, android sdk, just, and a clean app start

* refactor(web): use max for the settle budget

* ci: pin calibrated seeds, skip the flaky ios reinstall, bound every job

* ci: authenticate and pin the buf setup step

the anonymous release download hit the shared runner ip rate limit and
failed the job with 'socket hang up' after three retries.

* docs: record that canvas apps need a dom proxy to be text-fuzzable

* fix(ios): bound lifecycle rpcs and claim the target device

a launch the simulator rejects sent the xctest session into a recovery
chain that answered minutes late or never, and the rpc had no deadline,
so the run hung with no trace and no error. also take a per-udid flock:
a second run's reinstall lands under the first's live automation session
and wedges it.

* docs(ci): correct the ios hang wording and note the device lock

* refactor(verifier): derive the lastAction shape from one field list

both hosts must show a spec the same lastAction. one ordered list now
feeds the goja object and the json the web host installs, so they
cannot drift.

* fix(web): install lastAction in the page before extractors read it

state.lastAction was hardcoded null on web, so every property reading it
was silently vacuous: a correct property passed without ever firing.

* fix(web): carry element identity on actions and fix findAll on paths

an action's target was coordinates only, so a property matching on which
element was acted upon could never fire. ax.findAll([a,b]) also returned
nothing on web.

* fix(chrome): wait out a route transition before sampling facts

the tree stays byte-identical and quiet across a cross-fade, so both the
quiet timer and the unchanged-tree escape called it settled mid-flight
and extractors read two screens at once.

* fix: bound the pre-run app launch

launch happens before the runner starts, so --duration never covered it
and a wedged driver hung with no trace and no error.

* fix(folio): read balances from merged cards and treat unreadable as unknown

compose for web merges the whole accountcard subtree, so the balance
child never exists there and every card parsed as 0. the property then
compared 0 to 0 and fired on any submit, which is a false positive
generator. unknown is now null and null is vacuously true.

* test(folio): cover merged-card parsing and unknown balances

* ci(folio): make web an expect-the-bug leg

the web runtime can observe the double submit now, so the health gate
understates it. seed 1 finds it at step 109, 3 runs out of 3.

* docs(ci): explain why a submit tap landing on home is the bug

* fix(ios): read a StaticText's label as its text

AXValue was the only source for text, but a StaticText carries its
string in AXLabel, so nothing on screen had .text on ios: a spec reading
it saw everything on android and nothing here.

* docs(ci): correct the calibrated step ranges

* fix(folio): stop convicting on arithmetic float64 cannot hold

past 2^53 cents the gap between representable values is 128, so a real
1600-cent move reads back as something else and the equality is false
for a healthy submit as readily as a double one. also match parseCents:
a sign or an oversized amount is rejected, not read as an amount.

* test(folio): pin the safe-integer guard and its boundary

* docs: stop teaching the zero-default that caused a false alarm

* docs: write down the silent-vacuity failure modes

* feat(folio): tag the home total and the card transaction count

the total was the only untagged node on the screen, so the spec had to
sum cards and a clipped card broke the sum.

* fix(folio): read the app's own total and refuse contaminated windows

summing cards went null when one was clipped, and the null poisoned the
carrier for the rest of the run. the balance window also spanned every
transaction since the last home visit, so the property convicted on
deltas it could not attribute: the old web witness was 3.16x the typed
amount, not 2x.

* test(folio): pin the window rules and the count invariant

* fix(folio): never read a frame that shows two screens

android dumps a cross-fade with both screens in the tree. the route said
add-transaction while an unscoped find said home, so the oracle took a
half-rendered total as fresh and convicted on a tap that committed
nothing. one function now decides the route and returns null when the
frame is ambiguous.

* test(folio): cover transition frames, card readings and creation

* fix(folio): only disambiguate counts that came from merged text

the equal-length digit rule exists because web merges the card and an
account named -1 makes '12' ambiguous. a dedicated count node has
nothing to disambiguate, so applying it there threw away real evidence.

* ci(folio): pin the recalibrated seeds and drop android to a health gate

web 3 and ios 7 convict 3 runs out of 3 with an exactly 2x witness.
android convicts 2 in 5 because the same seed does not walk the same
trajectory there, so it proves the app runs instead.

* docs(ci): describe the two properties and why android cannot convict

* fix(android): wait out a route cross-fade before snapshotting

the dump could hold two screens at once, and the runner refuses to act
on such a tree, so a quarter of android steps applied no action and the
count varied per run: the same seed never walked the same trajectory.
the ios companion and the chrome driver already do this.

* ci(folio): let the android leg run far enough to see its conviction

* docs: only the repo owner merges

* ci(folio): a thrown predicate is not a conviction

exit 2 means the run recorded a violation, and a predicate that throws
is recorded as one too. so was newAccountBalanceIsZero, an unrelated
property in the same spec. the gate read the exit code and went green
with detection dead.

* ci: install idb-companion from its tap and stop interpolating inputs

idb-companion is not in homebrew-core, so the ios leg died before it
built anything. replay-ui expanded dispatch inputs into the shell.

* docs: correct the snippets and numbers that drifted from the code

* test(sidecar): pin that a slow read counts toward the stability streak

* fix(web): read the page's extractors only on steps that count

the page advances the spec's carriers when it evaluates, but the runner
applied the result only on non-transitional steps. a discarded step
moved the window forward anyway, so the next accepted pair bracketed two
transactions while counting one submit, and convicted a healthy app.
extractor errors now fail the run instead of leaving goja's values in
current against v8's in previous.

* fix(chrome): anchor the transition deadline when the dom goes quiet

it was anchored at script start, so a page that churned past the window
reached the check already expired and returned mid cross-fade. the
driver now publishes the idle timeout it needs, since the caller's 1s
could never spend the 800ms window.

* fix(web): fail on a partial extractor override

same mixed-producer hazard as the install error: some extractors hold
the page's value and the rest hold goja's, and a property comparing
across that split fires on a healthy app.

* docs: six of seven, the seventh is the stock property

* fix(folio): drop a name two cards answer to

homeTxnCountsOf keyed on the account name and let the last card win, so
two accounts the fuzzer named the same collapsed into one entry. a
reading that saw one Travel card and a later one that saw both then
subtracted two different accounts' counts, and
submitCommitsOneTransactionPerAction convicted a healthy app of
double-submitting. it is a gated property in folio-run.sh, so that reads
as "found the submit bug" over a card scrolling into view.

same rule createdAccountHasNonZeroBalance already applies: a name
nothing can attribute is no evidence. counted over every card, since an
unreadable twin spoils the identity too.

* perf(folio): read each frame once

every extractor asked routeOf, and routeOf does five ax.find calls. on
web each find walks the document and every shadow root beneath it, so
the spec cost 110 tree walks a step; homeCards was parsed four times
over. now 5 and once.

keyed on the identity of the state object because both hosts build a new
one per step and hand that one object to every getter, so it cannot
outlive its frame. holding the reference is what keeps that true rather
than likely.

* fix(web): keep an undefined reading's index through JSON

json has no undefined, so an extractor whose getter returned one had its
whole index dropped by JSON.stringify. that index then kept goja's
dump-derived value while its neighbours held the page's, and a property
comparing previous to current across the split fires on a healthy app.
folio has nine on(route, tag) extractors, so this was most extractors on
most steps.

each reading is wrapped in a {value} envelope: the drop now happens
inside the entry, and an absent value means the getter returned
undefined, which is what the goja host records for the same getter. a
json null would instead claim it returned null and x.current ===
undefined would answer differently on the two hosts.

* feat(verifier): report the registered extractor count

the web path needs it to check the page sent one reading per extractor.

* fix(runner): fail when the page reports fewer readings than extractors

the comment here already claimed a partial override was fatal. it was
not: the skipped check only catches indices outside the extractor list,
so a page reporting values for some extractors and not others left the
rest holding goja's reading of the dump with nothing said.

* test(browser): drive an undefined reading through the whole web path

four layers carry it: the page's envelope, the driver's unwrap, the
runner's count check and the verifier's decode. each has a unit test and
only a run proves they compose. goes red both ways, decoding an absent
value as null and dropping the envelope.

* fix(web): offer the aria roles a user activates

only role=button was in the tappable set, so link, checkbox, radio,
switch, tab, option, the menuitems and treeitem were invisible to the
enumeration however plain the control looked. the replay ui builds its
step rows as <li role="option">, and the spec dogfooding it had to
hand-write an action to reach them because no default verb could see a
single row.

both producers build the set from the same role list, since the parity
test compares them element by element.

* test(browser): tap a role-based control end to end

every control on the page is an <li role="option">, the shape the
replay ui gives its step rows, and the spec carries no action of its
own: the property firing is the evidence the default enumeration offered
a tap on one.

* fix(web): read aria-disabled as disabled

the enabled fact came off the disabled property, which only real form
controls have. it reads undefined on the role-based controls the
tappable set now covers, so every one of them looked enabled however
plainly it was marked otherwise, and the fuzzer would spend actions on
inert ones.

both producers answer the same two ways, and the parity fixture carries
a disabled row so the comparison covers it: reverting one side alone
names the element and the fact.

* docs(replay-ui): the enumeration reaches step rows now

the comment said role="option" is not in the tappable selector set,
which stopped being true a few commits ago. selectAStep stays, for the
reason the tab weight below it stays: one row among the page's clickable
elements is a thin chance, and both step-facing properties go vacuous on
a run that never selects one.

* test(runner): bound the last-action test by steps, not wall clock

100ms of wall clock against an assertion that two steps ran fatals under
load with "the web path never installed it", which reads as a
regression. every sibling test in the package uses a long duration and
MaxSteps.

* ci: run the kotlin tests in make test

RouteTransitionTest and the stability poll cover the android settle and
nothing in ci ran them. :sidecar:test needs no android sdk, checked by
running it with ANDROID_HOME pointed at nothing.

* fix(sidecar): measure the stability streak as observed quiet

parameterising pollUntilStable also moved the clock to the start of the
read that opened a run of identical snapshots, so a read's own duration
counted as quiet. the pre-existing caller polls a real uiautomator dump:
at 400ms a read, 750ms of required quiet became 250ms of observed quiet
and the poll settled in two reads instead of four.

the parameters stay, the semantics go back.

* test(sidecar): pin the transition cap by driving it

it asserted 1500 >= 700 + 300, two constants, which can only fail if
someone edits a constant. it now drives awaitSettledTree against a fade
that lands after 700ms and asserts it hands back the settled tree before
the cap. cut the cap to 1000 and it goes red.

* ci: pin buf-setup-action to a commit

it takes a token now, so a floating tag is a token handed to whatever
that tag moves to. note v1 there is a branch, not a tag, so the ref
lookup that resolves it is matching-refs/heads/v1.

* ci: declare least-privilege permissions

none of the three declared any, so each got the repository default.
release.yml and docs.yml already do this. all three only check out,
build, test and upload artifacts.

* ci: fail fast when a server never comes up

the readiness loops fell through silently after 30 tries, so a server
that never started surfaced as an opaque driver failure minutes later.
each now says what did not answer and on which port.

* ci(folio): a missing trace is not a verdict

with no trace the android gate ran its grep against ./trace.jsonl and
reported "never reached AddTransactionScreen, so it never got past
login", which is not what happened. the web and ios branches had the
same misdiagnosis on exit 0.

same class, one line up: the classifier's own failure was swallowed, so
with the evidence reader dead the gate printed a healthy run and exited
0.

* ci(replay-ui): skip a run directory with no trace

the summarise step is if: always(), and under github's bash -eo pipefail
an unmatched glob stays literal, the redirect fails, pipefail carries it
into the assignment and -e kills the step. so a failed fuzz run went red
twice, once for the real reason.
2026-08-15 13:01:27 +05:30

2075 lines
71 KiB
Go

package runner
import (
"bufio"
"bytes"
"context"
"encoding/json"
"errors"
"fmt"
"io"
"log/slog"
"os"
"path/filepath"
"slices"
"strings"
"testing"
"time"
"google.golang.org/grpc/codes"
"google.golang.org/grpc/status"
"github.com/priyanshujain/sanderling/internal/bundler"
"github.com/priyanshujain/sanderling/internal/driver"
mockdriver "github.com/priyanshujain/sanderling/internal/driver/mock"
"github.com/priyanshujain/sanderling/internal/hierarchy"
"github.com/priyanshujain/sanderling/internal/trace"
"github.com/priyanshujain/sanderling/internal/verifier"
)
const fixtureSpec = `
import { actions, always, extract, Tap } from "@sanderling/spec";
const balance = extract(state => state.snapshots.balance ?? 0);
globalThis.properties = {
balanceNonNegative: always(() => balance.current >= 0),
};
globalThis.actions = actions(() => [Tap({ on: "id:next" })]);
`
const violationSpec = `
import { actions, always } from "@sanderling/spec";
globalThis.properties = {
balanceNonNegative: always(() => false),
};
globalThis.actions = actions(() => []);
`
type harness struct {
mock *mockdriver.Driver
verifier *verifier.Verifier
writer *trace.Writer
}
func newHarness(t *testing.T) *harness {
return newHarnessWithSpec(t, fixtureSpec)
}
func fastFocusSettle(t *testing.T) {
prev := focusTapSettle
focusTapSettle = time.Millisecond
t.Cleanup(func() { focusTapSettle = prev })
}
// bundleSpec compiles an authored TS spec with the goja runtime entry so the
// loaded bundle installs __sanderlingNextAction__ (the shared picker).
func bundleSpec(t *testing.T, specSource string) string {
t.Helper()
dir := t.TempDir()
specPath := filepath.Join(dir, "spec.ts")
if err := os.WriteFile(specPath, []byte(specSource), 0o600); err != nil {
t.Fatal(err)
}
apiPath, err := filepath.Abs("../../pkg/spec/src/index.ts")
if err != nil {
t.Fatal(err)
}
runtimePath, err := filepath.Abs("../../pkg/spec/src/goja-runtime.ts")
if err != nil {
t.Fatal(err)
}
bundle, err := bundler.Bundle(bundler.Options{
EntryFile: specPath,
RuntimeFile: runtimePath,
Aliases: map[string]string{"@sanderling/spec": apiPath},
})
if err != nil {
t.Fatal(err)
}
return string(bundle.JavaScript)
}
func newHarnessWithSpec(t *testing.T, spec string) *harness {
t.Helper()
directory := t.TempDir()
writer, err := trace.NewWriter(directory)
if err != nil {
t.Fatal(err)
}
verifierInstance, err := verifier.New()
if err != nil {
t.Fatal(err)
}
if err := verifierInstance.Load(bundleSpec(t, spec)); err != nil {
t.Fatal(err)
}
state := &harness{
mock: mockdriver.New(),
verifier: verifierInstance,
writer: writer,
}
t.Cleanup(func() { _ = writer.Close() })
return state
}
func TestRunner_HappyPathStepsAndTraces(t *testing.T) {
state := newHarness(t)
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: 100 * time.Millisecond,
IdleTimeout: 50 * time.Millisecond,
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if summary.Steps == 0 {
t.Errorf("expected at least one step, got 0")
}
if len(summary.Violations) != 0 {
t.Errorf("no violations expected, got %v", summary.Violations)
}
// Every builtin verb is supported on every platform, so a clean run must
// report no unsupported verbs (the runner still wires the field through).
if len(summary.UnsupportedVerbs) != 0 {
t.Errorf("expected no unsupported verbs, got %v", summary.UnsupportedVerbs)
}
actions := state.mock.Actions()
if !containsAction(actions, mockdriver.ActionTapSelector, "id:next") {
t.Errorf("expected TapSelector with id:next, got %v", actions)
}
}
func TestRunner_MaxStepsStopsAfterExactlyNSteps(t *testing.T) {
state := newHarness(t)
const maxSteps = 3
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
// A long duration ensures MaxSteps, not the deadline, ends the run.
summary, err := Run(ctx, Options{
Duration: time.Hour,
IdleTimeout: 10 * time.Millisecond,
MaxSteps: maxSteps,
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if summary.Steps != maxSteps {
t.Errorf("expected exactly %d steps, got %d", maxSteps, summary.Steps)
}
}
// TestRenderSummary_SurfacesUnsupportedVerbs exercises the real path that takes
// verbs the picker requested but the platform cannot dispatch and puts them in
// front of the operator. TestRunner_HappyPath only ever asserts the field stays
// empty (every builtin is supported, so its non-empty arm can never fire), so
// without this the "unsupported on %s: ..." branch could be deleted and every
// unsupported-verb regression would pass silently.
func TestRenderSummary_SurfacesUnsupportedVerbs(t *testing.T) {
summary := Summary{Steps: 3, UnsupportedVerbs: []string{"longPresses", "scrolls"}}
var out bytes.Buffer
RenderSummary(&out, summary, "ios")
if !strings.Contains(out.String(), "unsupported on ios: longPresses, scrolls") {
t.Errorf("expected unsupported verbs line for ios, got:\n%s", out.String())
}
}
// TestRenderSummary_OmitsUnsupportedLineWhenNone guards the inverse: a clean run
// must not print a stray "unsupported on" line, so a future refactor cannot
// start emitting an empty list and alarm the operator on every run.
func TestRenderSummary_OmitsUnsupportedLineWhenNone(t *testing.T) {
var out bytes.Buffer
RenderSummary(&out, Summary{Steps: 2}, "android")
if strings.Contains(out.String(), "unsupported on") {
t.Errorf("did not expect an unsupported-verbs line, got:\n%s", out.String())
}
}
func TestRunner_ViolationSurfacesInSummary(t *testing.T) {
state := newHarnessWithSpec(t, violationSpec)
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: 100 * time.Millisecond,
IdleTimeout: 50 * time.Millisecond,
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if len(summary.Violations) == 0 {
t.Errorf("expected at least one violation, got %v", summary.Violations)
}
if !containsProperty(summary.Violations, "balanceNonNegative") {
t.Errorf("expected balanceNonNegative in violations: %v", summary.Violations)
}
}
func TestRunner_ViolationSurfacesOnlyOnOnsetStep(t *testing.T) {
// violationSpec uses always(() => false): onset fires on step 1 and the
// residual stays violated forever. The runner must record the violation
// exactly once (at the onset step) in both summary.Violations and trace
// lines, not on every subsequent step.
state := newHarnessWithSpec(t, violationSpec)
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: 200 * time.Millisecond,
IdleTimeout: 20 * time.Millisecond,
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if summary.Steps < 2 {
t.Fatalf("need at least 2 steps to prove onset-only behavior, got %d", summary.Steps)
}
if len(summary.Violations) != 1 {
t.Fatalf("expected exactly one ViolationRecord (onset only), got %d: %v",
len(summary.Violations), summary.Violations)
}
if summary.Violations[0].StepIndex != 1 {
t.Errorf("onset step: got %d, want 1 (always(()=>false) violates immediately)",
summary.Violations[0].StepIndex)
}
if !slices.Equal(summary.Violations[0].Properties, []string{"balanceNonNegative"}) {
t.Errorf("onset properties: got %v, want [balanceNonNegative]",
summary.Violations[0].Properties)
}
file, err := os.Open(filepath.Join(state.writer.Directory(), "trace.jsonl"))
if err != nil {
t.Fatal(err)
}
defer file.Close()
type traceLine struct {
Step int `json:"step"`
Violations []string `json:"violations"`
}
linesWithViolations := 0
scanner := bufio.NewScanner(file)
scanner.Buffer(make([]byte, 0, 64*1024), 8*1024*1024)
for scanner.Scan() {
var line traceLine
if err := json.Unmarshal(scanner.Bytes(), &line); err != nil {
t.Fatalf("trace line decode: %v", err)
}
if len(line.Violations) == 0 {
continue
}
linesWithViolations++
if line.Step != 1 {
t.Errorf("step %d unexpectedly emitted violations %v (should be onset-only at step 1)",
line.Step, line.Violations)
}
}
if err := scanner.Err(); err != nil {
t.Fatalf("scan trace: %v", err)
}
if linesWithViolations != 1 {
t.Errorf("expected exactly 1 trace line with violations, got %d", linesWithViolations)
}
}
func TestRunner_NextViolationAttributedToCausingStep(t *testing.T) {
// always(next(p)): the obligation spawned at step 2 fails against step 3's
// state. The summary record and the trace witness must attribute the
// violation to step 2 (the causing step); the trace line that carries it is
// still step 3, where the failure was detected.
const nextViolationSpec = `
import { actions, always, next, extract } from "@sanderling/spec";
let observed = 0;
const tick = extract(() => ++observed);
globalThis.properties = {
nextHolds: always(next(() => tick.current < 3)),
};
globalThis.actions = actions(() => []);
`
state := newHarnessWithSpec(t, nextViolationSpec)
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: time.Hour,
IdleTimeout: 20 * time.Millisecond,
MaxSteps: 5,
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if len(summary.Violations) != 1 {
t.Fatalf("expected exactly one ViolationRecord, got %d: %v",
len(summary.Violations), summary.Violations)
}
if summary.Violations[0].StepIndex != 2 {
t.Errorf("summary step: got %d, want 2 (the step that spawned the next obligation)",
summary.Violations[0].StepIndex)
}
if !slices.Equal(summary.Violations[0].Properties, []string{"nextHolds"}) {
t.Errorf("properties: got %v, want [nextHolds]", summary.Violations[0].Properties)
}
file, err := os.Open(filepath.Join(state.writer.Directory(), "trace.jsonl"))
if err != nil {
t.Fatal(err)
}
defer file.Close()
type traceLine struct {
Step int `json:"step"`
Violations []string `json:"violations"`
Witnesses map[string]trace.Witness `json:"witnesses"`
}
found := false
scanner := bufio.NewScanner(file)
scanner.Buffer(make([]byte, 0, 64*1024), 8*1024*1024)
for scanner.Scan() {
var line traceLine
if err := json.Unmarshal(scanner.Bytes(), &line); err != nil {
t.Fatalf("trace line decode: %v", err)
}
if len(line.Violations) == 0 {
continue
}
found = true
if line.Step != 3 {
t.Errorf("violation detected on step %d, want 3", line.Step)
}
witness, ok := line.Witnesses["nextHolds"]
if !ok {
t.Fatalf("step %d carries no witness for nextHolds", line.Step)
}
if witness.Step != 2 {
t.Errorf("witness step: got %d, want 2 (causing step)", witness.Step)
}
// The two indices the witness spans are recorded separately: the
// extractor snapshot it carries is step 3's state, not step 2's.
if witness.DetectedStep != 3 {
t.Errorf("witness detected step: got %d, want 3", witness.DetectedStep)
}
}
if err := scanner.Err(); err != nil {
t.Fatalf("scan trace: %v", err)
}
if !found {
t.Error("no trace line carried the violation")
}
}
func TestRunner_AlwaysNextLeavesNoEndOfRunViolation(t *testing.T) {
// always(next(p)) ends every run with a pending deferred check. That
// residue is vacuous (no successor state to check), so neither the
// summary nor the trace may report an end-of-run violation.
const spec = `
import { actions, always, next } from "@sanderling/spec";
globalThis.properties = {
nextHolds: always(next(() => true)),
};
globalThis.actions = actions(() => []);
`
state := newHarnessWithSpec(t, spec)
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: time.Hour,
IdleTimeout: 20 * time.Millisecond,
MaxSteps: 3,
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if len(summary.Violations) != 0 {
t.Errorf("expected no violations, got %v", summary.Violations)
}
}
func TestRunner_FinalizeRecordUsesDistinctStepIndex(t *testing.T) {
// An eventually that never fires is reported at run end through a
// synthetic trace record. That record must carry its own step index so no
// two trace lines share one (duplicate indices made the replay UI select
// two rows at once).
const spec = `
import { actions, eventually } from "@sanderling/spec";
globalThis.properties = {
neverFires: eventually(() => false),
};
globalThis.actions = actions(() => []);
`
state := newHarnessWithSpec(t, spec)
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: time.Hour,
IdleTimeout: 20 * time.Millisecond,
MaxSteps: 3,
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if !containsProperty(summary.Violations, "neverFires") {
t.Fatalf("expected neverFires in violations: %v", summary.Violations)
}
file, err := os.Open(filepath.Join(state.writer.Directory(), "trace.jsonl"))
if err != nil {
t.Fatal(err)
}
defer file.Close()
type traceLine struct {
Step int `json:"step"`
Violations []string `json:"violations"`
}
seen := map[int]bool{}
finalizeStep := 0
scanner := bufio.NewScanner(file)
scanner.Buffer(make([]byte, 0, 64*1024), 8*1024*1024)
for scanner.Scan() {
var line traceLine
if err := json.Unmarshal(scanner.Bytes(), &line); err != nil {
t.Fatalf("trace line decode: %v", err)
}
if seen[line.Step] {
t.Errorf("duplicate step index %d in trace", line.Step)
}
seen[line.Step] = true
if slices.Contains(line.Violations, "neverFires") {
finalizeStep = line.Step
}
}
if err := scanner.Err(); err != nil {
t.Fatalf("scan trace: %v", err)
}
if finalizeStep != summary.Steps+1 {
t.Errorf("finalize record step = %d, want %d (steps+1)", finalizeStep, summary.Steps+1)
}
}
func TestRunner_ThrowingPredicateIsLoggedNotPanic(t *testing.T) {
const throwingSpec = `
import { actions, always, Tap } from "@sanderling/spec";
globalThis.properties = {
broken: always(() => { throw new Error("bad predicate"); }),
};
globalThis.actions = actions(() => [Tap({ on: "id:next" })]);
`
state := newHarnessWithSpec(t, throwingSpec)
var buffer bytes.Buffer
logger := slog.New(slog.NewTextHandler(&buffer, &slog.HandlerOptions{Level: slog.LevelWarn}))
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: 100 * time.Millisecond,
IdleTimeout: 50 * time.Millisecond,
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
Logger: logger,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if !containsProperty(summary.Violations, "broken") {
t.Errorf("expected broken in violations: %v", summary.Violations)
}
if !strings.Contains(buffer.String(), "bad predicate") {
t.Errorf("expected predicate error in log, got %q", buffer.String())
}
}
func TestRunner_RejectsMissingFields(t *testing.T) {
_, err := Run(context.Background(), Options{Duration: time.Second})
if err == nil || !strings.Contains(err.Error(), "Driver") {
t.Errorf("expected Driver-required error, got %v", err)
}
}
func TestRunner_RejectsZeroDuration(t *testing.T) {
_, err := Run(context.Background(), Options{
Driver: mockdriver.New(),
Verifier: mustNewVerifier(t),
TraceWriter: mustNewTraceWriter(t),
})
if err == nil || !strings.Contains(err.Error(), "Duration") {
t.Errorf("expected Duration-required error, got %v", err)
}
}
func TestRunner_StampsHierarchyResolvedBoundsAndResiduals(t *testing.T) {
state := newHarness(t)
state.mock.HierarchyJSON = `{"attributes":{"resource-id":"com.fixture:id/next","bounds":"[40,80,240,160]"},"children":[],"clickable":true,"enabled":true}`
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
if _, err := Run(ctx, Options{
Duration: 100 * time.Millisecond,
IdleTimeout: 50 * time.Millisecond,
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
}); err != nil {
t.Fatalf("Run: %v", err)
}
body, err := os.ReadFile(filepath.Join(state.writer.Directory(), "trace.jsonl"))
if err != nil {
t.Fatal(err)
}
text := string(body)
if !strings.Contains(text, `"selector":"id:next"`) {
t.Errorf("expected selector in trace: %s", text)
}
if !strings.Contains(text, `"resolved_bounds":{"x":40,"y":80,"width":200,"height":80}`) {
t.Errorf("expected resolved_bounds in trace: %s", text)
}
if !strings.Contains(text, `"tap_point":{"x":140,"y":120}`) {
t.Errorf("expected tap_point in trace: %s", text)
}
if !strings.Contains(text, `"hierarchy":{"elements":`) {
t.Errorf("expected hierarchy in trace: %s", text)
}
if !strings.Contains(text, `"residuals":{`) {
t.Errorf("expected residuals in trace: %s", text)
}
}
// TestTraceActionFor_StaleCoordinatesDoNotOverrideTreeCenter pins the stamp
// to applyAction's resolution rule: when On resolves in the tree, the trace
// tap point must be the tree center even if the action carries stale X/Y
// from an earlier tick.
func TestTraceActionFor_StaleCoordinatesDoNotOverrideTreeCenter(t *testing.T) {
tree, err := hierarchy.Parse(`{"attributes":{"resource-id":"root","bounds":"[0,0,1080,2340]"},"children":[
{"attributes":{"resource-id":"next","bounds":"[100,200,300,400]"},"children":[]}
]}`)
if err != nil {
t.Fatalf("Parse: %v", err)
}
action := verifier.Action{Kind: verifier.ActionKindTap, On: "id:next", X: 50, Y: 60}
traceAction := traceActionFor(action, tree)
if traceAction.TapPoint == nil {
t.Fatal("expected a tap point")
}
if traceAction.TapPoint.X != 200 || traceAction.TapPoint.Y != 300 {
t.Errorf("tap point = (%d,%d), want tree center (200,300)",
traceAction.TapPoint.X, traceAction.TapPoint.Y)
}
if traceAction.ResolvedBounds == nil {
t.Fatal("expected resolved bounds")
}
if traceAction.ResolvedBounds.X != 100 || traceAction.ResolvedBounds.Y != 200 {
t.Errorf("resolved bounds origin = (%d,%d), want (100,200)",
traceAction.ResolvedBounds.X, traceAction.ResolvedBounds.Y)
}
}
// TestTraceActionFor_RecordsKindSpecificFields locks each action kind's trace
// encoding. PressKey must carry its Key and Wait its DurationMillis; if either
// branch of traceActionFor drops the field (or a field rename desyncs from the
// trace.Action struct) the replay UI silently renders a key-less PressKey or a
// zero-duration Wait. Swipe's endpoint encoding is covered separately via
// applyAction (TestApplyAction_ScrollWithPrecomputedEndpointsSwipes).
func TestTraceActionFor_RecordsKindSpecificFields(t *testing.T) {
cases := []struct {
name string
action verifier.Action
check func(*testing.T, *trace.Action)
}{
{
"PressKey records key",
verifier.Action{Kind: verifier.ActionKindPressKey, Key: "back"},
func(t *testing.T, a *trace.Action) {
if a.Key != "back" {
t.Errorf("Key = %q, want %q", a.Key, "back")
}
},
},
{
"Wait records duration",
verifier.Action{Kind: verifier.ActionKindWait, DurationMillis: 250},
func(t *testing.T, a *trace.Action) {
if a.DurationMillis != 250 {
t.Errorf("DurationMillis = %d, want 250", a.DurationMillis)
}
},
},
}
for _, testCase := range cases {
t.Run(testCase.name, func(t *testing.T) {
traceAction := traceActionFor(testCase.action, nil)
if traceAction.Kind != string(testCase.action.Kind) {
t.Errorf("Kind = %q, want %q", traceAction.Kind, testCase.action.Kind)
}
testCase.check(t, traceAction)
})
}
}
func TestRunner_LogsWaitForIdleDriverErrors(t *testing.T) {
state := newHarness(t)
state.mock.Failures[mockdriver.ActionWaitForIdle] = errors.New("sidecar lost gRPC stream")
var logBuf bytes.Buffer
logger := slog.New(slog.NewTextHandler(&logBuf, &slog.HandlerOptions{Level: slog.LevelWarn}))
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
if _, err := Run(ctx, Options{
Duration: 100 * time.Millisecond,
IdleTimeout: 50 * time.Millisecond,
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
Logger: logger,
}); err != nil {
t.Fatalf("Run: %v", err)
}
output := logBuf.String()
if !strings.Contains(output, "wait_for_idle failed") {
t.Errorf("expected wait_for_idle warning, got: %q", output)
}
if !strings.Contains(output, "sidecar lost gRPC stream") {
t.Errorf("expected driver error message in warning, got: %q", output)
}
}
func TestApplyAction_InputTextErasesExistingTextBeforeTyping(t *testing.T) {
fastFocusSettle(t)
tree, err := hierarchy.Parse(`{"attributes":{"resource-id":"root","bounds":"[0,0,1080,2340]"},"children":[
{"attributes":{"resource-id":"username","text":"stale-value","bounds":"[10,10,500,100]"},"children":[]}
]}`)
if err != nil {
t.Fatalf("Parse: %v", err)
}
driverMock := mockdriver.New()
action := verifier.Action{Kind: verifier.ActionKindInputText, On: "id:username", Text: "alice"}
if err := applyAction(context.Background(), driverMock, action, tree); err != nil {
t.Fatalf("applyAction: %v", err)
}
// The post-tap settle is now a brief internal sleep, not a WaitForIdle RPC,
// so the recorded driver actions are tap, erase, input.
actions := driverMock.Actions()
if len(actions) != 3 {
t.Fatalf("want tap, erase, input; got %v", actions)
}
if actions[0].Kind != mockdriver.ActionTap {
t.Errorf("first action = %v, want tap", actions[0].Kind)
}
if actions[1].Kind != mockdriver.ActionEraseText || actions[1].CharacterCount != len("stale-value") {
t.Errorf("second action = %+v, want erase_text of %d characters", actions[1], len("stale-value"))
}
if actions[2].Kind != mockdriver.ActionInputText || actions[2].Text != "alice" {
t.Errorf("third action = %+v, want input_text alice", actions[2])
}
}
// TestApplyAction_InputTextWithoutTargetSkipsFocusTap pins that with no
// resolvable target there is no focus tap (and so no settle), and InputText
// still runs at the cursor.
func TestApplyAction_InputTextWithoutTargetSkipsFocusTap(t *testing.T) {
driverMock := mockdriver.New()
action := verifier.Action{Kind: verifier.ActionKindInputText, X: -1, Y: -1, Text: "alice"}
if err := applyAction(context.Background(), driverMock, action, nil); err != nil {
t.Fatalf("applyAction: %v", err)
}
actions := driverMock.Actions()
if len(actions) != 1 || actions[0].Kind != mockdriver.ActionInputText {
t.Errorf("no target: want input_text only (no focus tap), got %v", actions)
}
}
// TestApplyAction_InputTextSkipsEraseForReplacingDriver pins that a driver
// asserting the TextReplacer capability never pays the pre-erase round-trip:
// its InputText already replaces the field's content.
func TestApplyAction_InputTextSkipsEraseForReplacingDriver(t *testing.T) {
fastFocusSettle(t)
tree, err := hierarchy.Parse(`{"attributes":{"resource-id":"root","bounds":"[0,0,1080,2340]"},"children":[
{"attributes":{"resource-id":"username","text":"stale-value","bounds":"[10,10,500,100]"},"children":[]}
]}`)
if err != nil {
t.Fatalf("Parse: %v", err)
}
driverMock := mockdriver.New()
driverMock.ReplacesText = true
action := verifier.Action{Kind: verifier.ActionKindInputText, On: "id:username", Text: "alice"}
if err := applyAction(context.Background(), driverMock, action, tree); err != nil {
t.Fatalf("applyAction: %v", err)
}
if containsAction(driverMock.Actions(), mockdriver.ActionEraseText, "") {
t.Errorf("replacing driver must not be asked to erase: %v", driverMock.Actions())
}
if !containsAction(driverMock.Actions(), mockdriver.ActionInputText, "") {
t.Errorf("expected InputText, got %v", driverMock.Actions())
}
}
func TestApplyAction_InputTextSkipsEraseWhenTargetEmpty(t *testing.T) {
fastFocusSettle(t)
tree, err := hierarchy.Parse(`{"attributes":{"resource-id":"root","bounds":"[0,0,1080,2340]"},"children":[
{"attributes":{"resource-id":"username","bounds":"[10,10,500,100]"},"children":[]}
]}`)
if err != nil {
t.Fatalf("Parse: %v", err)
}
driverMock := mockdriver.New()
action := verifier.Action{Kind: verifier.ActionKindInputText, On: "id:username", Text: "alice"}
if err := applyAction(context.Background(), driverMock, action, tree); err != nil {
t.Fatalf("applyAction: %v", err)
}
if containsAction(driverMock.Actions(), mockdriver.ActionEraseText, "") {
t.Errorf("empty field must not be erased: %v", driverMock.Actions())
}
}
func TestApplyAction_InputTextSurfacesFocusTapError(t *testing.T) {
t.Run("selector focus tap fails", func(t *testing.T) {
driverMock := mockdriver.New()
driverMock.Failures[mockdriver.ActionTapSelector] = errors.New("adb unreachable")
action := verifier.Action{Kind: verifier.ActionKindInputText, On: "id:username", Text: "alice"}
err := applyAction(context.Background(), driverMock, action, nil)
if err == nil {
t.Fatalf("expected focus tap failure to surface, got nil")
}
if containsAction(driverMock.Actions(), mockdriver.ActionInputText, "") {
t.Errorf("InputText must not run after focus tap failed: %v", driverMock.Actions())
}
})
t.Run("coordinate focus tap fails", func(t *testing.T) {
driverMock := mockdriver.New()
driverMock.Failures[mockdriver.ActionTap] = errors.New("tap driver error")
action := verifier.Action{Kind: verifier.ActionKindInputText, X: 10, Y: 20, Text: "alice"}
err := applyAction(context.Background(), driverMock, action, nil)
if err == nil {
t.Fatalf("expected focus tap failure to surface, got nil")
}
if containsAction(driverMock.Actions(), mockdriver.ActionInputText, "") {
t.Errorf("InputText must not run after focus tap failed: %v", driverMock.Actions())
}
})
}
func TestApplyAction_V8InputTextTapsAtCoordinates(t *testing.T) {
fastFocusSettle(t)
driverMock := mockdriver.New()
action := verifier.Action{Kind: verifier.ActionKindInputText, X: 50, Y: 100, Text: "alice"}
if err := applyAction(context.Background(), driverMock, action, nil); err != nil {
t.Fatalf("apply action: %v", err)
}
actions := driverMock.Actions()
if !containsAction(actions, mockdriver.ActionTap, "") {
t.Errorf("expected focus Tap before InputText, got %v", actions)
}
if !containsAction(actions, mockdriver.ActionInputText, "") {
t.Errorf("expected InputText after focus Tap, got %v", actions)
}
}
func TestApplyAction_V8InputTextAtOriginStillTaps(t *testing.T) {
fastFocusSettle(t)
driverMock := mockdriver.New()
// V8 emits real (0,0) coordinates for an element at viewport top-left
// (post-#15 the runtime nullifies unresolved actions, so a non-null
// InputText with (0,0) is a deliberate edge tap, not a sentinel).
action := verifier.Action{Kind: verifier.ActionKindInputText, X: 0, Y: 0, Text: "alice"}
if err := applyAction(context.Background(), driverMock, action, nil); err != nil {
t.Fatalf("apply action: %v", err)
}
if !containsAction(driverMock.Actions(), mockdriver.ActionTap, "") {
t.Errorf("expected focus Tap at (0,0), got %v", driverMock.Actions())
}
}
func TestApplyAction_DoubleTapDispatchesDoubleTapAtCoordinates(t *testing.T) {
driverMock := mockdriver.New()
action := verifier.Action{Kind: verifier.ActionKindDoubleTap, X: 100, Y: 200}
if err := applyAction(context.Background(), driverMock, action, nil); err != nil {
t.Fatalf("apply action: %v", err)
}
taps := 0
for _, a := range driverMock.Actions() {
if a.Kind == mockdriver.ActionDoubleTap && a.X == 100 && a.Y == 200 {
taps++
}
}
if taps != 1 {
t.Errorf("expected 1 DoubleTap call at (100,200), got %d in %v", taps, driverMock.Actions())
}
}
func TestApplyAction_DoubleTapDispatchesDoubleTapSelector(t *testing.T) {
driverMock := mockdriver.New()
action := verifier.Action{Kind: verifier.ActionKindDoubleTap, On: "id:save"}
if err := applyAction(context.Background(), driverMock, action, nil); err != nil {
t.Fatalf("apply action: %v", err)
}
taps := 0
for _, a := range driverMock.Actions() {
if a.Kind == mockdriver.ActionDoubleTapSelector && a.Selector == "id:save" {
taps++
}
}
if taps != 1 {
t.Errorf("expected 1 DoubleTapSelector call with id:save, got %d in %v", taps, driverMock.Actions())
}
}
func TestApplyAction_LongPressDispatchesAtResolvedCoordinates(t *testing.T) {
driverMock := mockdriver.New()
action := verifier.Action{Kind: verifier.ActionKindLongPress, X: 120, Y: 240}
if err := applyAction(context.Background(), driverMock, action, nil); err != nil {
t.Fatalf("apply action: %v", err)
}
found := false
for _, a := range driverMock.Actions() {
if a.Kind == mockdriver.ActionLongPress && a.X == 120 && a.Y == 240 {
found = true
}
}
if !found {
t.Errorf("expected LongPress at (120,240), got %v", driverMock.Actions())
}
}
func TestApplyAction_ScrollWithPrecomputedEndpointsSwipes(t *testing.T) {
driverMock := mockdriver.New()
action := verifier.Action{
Kind: verifier.ActionKindScroll,
Direction: "down",
FromX: 100,
FromY: 500,
ToX: 100,
ToY: 300,
DurationMillis: 300,
}
if err := applyAction(context.Background(), driverMock, action, nil); err != nil {
t.Fatalf("apply action: %v", err)
}
found := false
for _, a := range driverMock.Actions() {
if a.Kind == mockdriver.ActionSwipe && a.FromX == 100 && a.FromY == 500 && a.ToX == 100 && a.ToY == 300 {
found = true
}
}
if !found {
t.Errorf("expected Swipe with precomputed endpoints, got %v", driverMock.Actions())
}
}
func TestApplyAction_ScrollDirectionUsesInversion(t *testing.T) {
driverMock := mockdriver.New()
treeJSON := `{"attributes":{"resource-id":"com.fixture:id/list","bounds":"[0,0,400,800]"},"children":[],"enabled":true}`
tree, err := hierarchy.Parse(treeJSON)
if err != nil {
t.Fatalf("parse tree: %v", err)
}
action := verifier.Action{Kind: verifier.ActionKindScroll, Direction: "down", On: "id:list"}
if err := applyAction(context.Background(), driverMock, action, tree); err != nil {
t.Fatalf("apply action: %v", err)
}
var swipe *mockdriver.Action
for i := range driverMock.Actions() {
if driverMock.Actions()[i].Kind == mockdriver.ActionSwipe {
a := driverMock.Actions()[i]
swipe = &a
}
}
if swipe == nil {
t.Fatalf("expected a Swipe, got %v", driverMock.Actions())
}
// "down" reveals lower content by dragging the finger up, so toY < fromY.
if swipe.ToY >= swipe.FromY {
t.Errorf("expected toY < fromY for scroll down, got from=%d to=%d", swipe.FromY, swipe.ToY)
}
}
func TestApplyAction_ScrollNearTopKeepsDirectionAfterClamp(t *testing.T) {
driverMock := mockdriver.New()
// Full-screen root sets the 1080x2400 screen (marginY=200); the scrollable
// list sits inside the top margin (y 20..180), where the clamp must fire.
treeJSON := `{"attributes":{"bounds":"[0,0,1080,2400]"},"children":[
{"attributes":{"resource-id":"com.fixture:id/toplist","scrollable":"true","bounds":"[0,20,1080,180]"},"children":[],"enabled":true}
]}`
tree, err := hierarchy.Parse(treeJSON)
if err != nil {
t.Fatalf("parse tree: %v", err)
}
action := verifier.Action{Kind: verifier.ActionKindScroll, Direction: "up", On: "id:toplist"}
if err := applyAction(context.Background(), driverMock, action, tree); err != nil {
t.Fatalf("apply action: %v", err)
}
var swipe *mockdriver.Action
for i := range driverMock.Actions() {
if driverMock.Actions()[i].Kind == mockdriver.ActionSwipe {
a := driverMock.Actions()[i]
swipe = &a
}
}
if swipe == nil {
t.Fatalf("expected a Swipe, got %v", driverMock.Actions())
}
if swipe.FromY != 200 {
t.Errorf("origin not pushed below the shade strip, got fromY=%d want 200", swipe.FromY)
}
if swipe.ToY <= swipe.FromY {
t.Errorf("scroll up reversed by the clamp: from=%d to=%d (want toY > fromY)", swipe.FromY, swipe.ToY)
}
}
func TestApplyAction_ScrollScreenFallback(t *testing.T) {
driverMock := mockdriver.New()
treeJSON := `{"attributes":{"bounds":"[0,0,400,800]"},"children":[],"enabled":true}`
tree, err := hierarchy.Parse(treeJSON)
if err != nil {
t.Fatalf("parse tree: %v", err)
}
// On unset: container falls back to whole-screen (root) bounds.
action := verifier.Action{Kind: verifier.ActionKindScroll, Direction: "up"}
if err := applyAction(context.Background(), driverMock, action, tree); err != nil {
t.Fatalf("apply action: %v", err)
}
var swipe *mockdriver.Action
for i := range driverMock.Actions() {
if driverMock.Actions()[i].Kind == mockdriver.ActionSwipe {
a := driverMock.Actions()[i]
swipe = &a
}
}
if swipe == nil {
t.Fatalf("expected a Swipe, got %v", driverMock.Actions())
}
if swipe.FromX != 200 || swipe.FromY != 400 {
t.Errorf("expected swipe to start at screen center (200,400), got (%d,%d)", swipe.FromX, swipe.FromY)
}
// "up" reveals upper content by dragging the finger down, so toY > fromY.
if swipe.ToY <= swipe.FromY {
t.Errorf("expected toY > fromY for scroll up, got from=%d to=%d", swipe.FromY, swipe.ToY)
}
}
func TestRunner_ParallelFetchCallsAllDriverMethods(t *testing.T) {
state := newHarness(t)
state.mock.MetricsData = driver.Metrics{CPUPercent: 5.0, HeapBytes: 1024, TotalMemoryBytes: 4096}
state.mock.LogEntries = []driver.LogEntry{
{UnixMillis: 1000, Level: "E", Tag: "test", Message: "boom"},
}
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
_, err := Run(ctx, Options{
Duration: 100 * time.Millisecond,
IdleTimeout: 50 * time.Millisecond,
BundleID: "com.fixture",
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
actions := state.mock.Actions()
var hasSnapshot, hasMetrics, hasLogs bool
for _, a := range actions {
switch a.Kind {
case mockdriver.ActionSnapshot:
hasSnapshot = true
case mockdriver.ActionMetrics:
hasMetrics = true
case mockdriver.ActionRecentLogs:
hasLogs = true
}
}
if !hasSnapshot {
t.Error("expected Snapshot call in mock actions")
}
if !hasMetrics {
t.Error("expected Metrics call in mock actions")
}
if !hasLogs {
t.Error("expected RecentLogs call in mock actions")
}
}
// TestRunner_UsesAtomicSnapshot ensures the runner observes a step's UI
// through the paired Snapshot RPC instead of racing two independent
// hierarchy + screenshot reads. The pair must come from one on-device
// frame; a regression to separate calls is what this test catches.
func TestRunner_UsesAtomicSnapshot(t *testing.T) {
state := newHarness(t)
state.mock.ImageData = driver.Image{PNG: []byte("png"), Width: 1, Height: 1}
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: 100 * time.Millisecond,
IdleTimeout: 20 * time.Millisecond,
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if summary.Steps == 0 {
t.Fatal("expected at least one step")
}
var snapshotCalls, hierarchyCalls, screenshotCalls int
for _, action := range state.mock.Actions() {
switch action.Kind {
case mockdriver.ActionSnapshot:
snapshotCalls++
case mockdriver.ActionHierarchy:
hierarchyCalls++
case mockdriver.ActionScreenshot:
screenshotCalls++
}
}
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)
}
if screenshotCalls != 0 {
t.Errorf("expected zero standalone Screenshot calls (runner must use Snapshot), got %d", screenshotCalls)
}
}
// TestRunner_OneScreenshotPerStep verifies the runner writes a single
// screenshot per step, captured concurrently with hierarchy so the two
// observations describe the same UI moment.
func TestRunner_OneScreenshotPerStep(t *testing.T) {
state := newHarness(t)
state.mock.ImageData = driver.Image{PNG: []byte("fakepng"), Width: 100, Height: 200}
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: 200 * time.Millisecond,
IdleTimeout: 50 * time.Millisecond,
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if summary.Steps < 2 {
t.Fatalf("need at least 2 steps for screenshot test, got %d", summary.Steps)
}
screenshotDir := filepath.Join(state.writer.Directory(), "screenshots")
for step := 1; step <= summary.Steps; step++ {
path := filepath.Join(screenshotDir, fmt.Sprintf("step-%05d.png", step))
if _, err := os.Stat(path); os.IsNotExist(err) {
t.Errorf("expected screenshot for step %d at %s", step, path)
}
}
entries, err := os.ReadDir(screenshotDir)
if err != nil {
t.Fatal(err)
}
for _, entry := range entries {
if strings.Contains(entry.Name(), "-after") {
t.Errorf("unexpected -after screenshot remains: %s", entry.Name())
}
}
}
// TestRunner_StableTransitionalTreeIsVerified feeds a driver whose hierarchy
// constantly carries two route-level *Screen ids but never changes between
// retry attempts. Such a tree is a settled state that merely matches the
// transitional heuristic, so the runner must verify it (the always-false
// predicate's violation surfaces) instead of skipping the verifier forever.
func TestRunner_StableTransitionalTreeIsVerified(t *testing.T) {
state := newHarnessWithSpec(t, violationSpec)
state.mock.HierarchyJSON = `{"attributes":{"resource-id":"root"},"children":[
{"attributes":{"resource-id":"AddAccountScreen"},"children":[]},
{"attributes":{"resource-id":"HomeScreen"},"children":[]}
]}`
state.mock.ImageData = driver.Image{PNG: []byte("fakepng"), Width: 100, Height: 200}
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: 200 * time.Millisecond,
IdleTimeout: 20 * time.Millisecond,
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if summary.Steps == 0 {
t.Fatal("expected at least one step")
}
if !containsProperty(summary.Violations, "balanceNonNegative") {
t.Fatalf("expected verifier to run on a stable two-screen tree, got %v", summary.Violations)
}
type traceLine struct {
Step int `json:"step"`
Transitional bool `json:"transitional"`
}
body, err := os.ReadFile(filepath.Join(state.writer.Directory(), "trace.jsonl"))
if err != nil {
t.Fatal(err)
}
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)
}
if line.Transitional {
t.Errorf("step %d: stable tree must not be marked transitional", line.Step)
}
}
// The early break must still persist the step's screenshot.
screenshotPath := filepath.Join(state.writer.Directory(), "screenshots", "step-00001.png")
if _, err := os.Stat(screenshotPath); err != nil {
t.Errorf("expected screenshot for step 1 at %s: %v", screenshotPath, err)
}
}
// snapshotCrossFade wraps a mock driver so every Snapshot call returns a
// transitional two-screen tree whose JSON differs from the previous call,
// mimicking a genuine cross-fade in flight.
type snapshotCrossFade struct {
*mockdriver.Driver
calls int
}
func (d *snapshotCrossFade) Snapshot(ctx context.Context) (string, driver.Image, error) {
d.calls++
_, image, err := d.Driver.Snapshot(ctx)
hierarchyJSON := fmt.Sprintf(`{"attributes":{"resource-id":"root"},"children":[
{"attributes":{"resource-id":"AddAccountScreen","text":"frame-%d"},"children":[]},
{"attributes":{"resource-id":"HomeScreen"},"children":[]}
]}`, d.calls)
return hierarchyJSON, image, err
}
// TestRunner_GenuineCrossFadeStillRetried pins the existing behavior for real
// transitions: a tree that keeps changing between retry attempts exhausts the
// budget, stays transitional, and the verifier is skipped for the step.
func TestRunner_GenuineCrossFadeStillRetried(t *testing.T) {
state := newHarnessWithSpec(t, violationSpec)
wrapped := &snapshotCrossFade{Driver: state.mock}
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: 200 * time.Millisecond,
IdleTimeout: 20 * time.Millisecond,
Driver: wrapped,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if summary.Steps == 0 {
t.Fatal("expected at least one step")
}
if len(summary.Violations) != 0 {
t.Fatalf("verifier must be skipped on cross-fade steps; got %v", summary.Violations)
}
type traceLine struct {
Step int `json:"step"`
Transitional bool `json:"transitional"`
Violations []string `json:"violations"`
}
body, err := os.ReadFile(filepath.Join(state.writer.Directory(), "trace.jsonl"))
if err != nil {
t.Fatal(err)
}
lines := 0
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)
}
lines++
if !line.Transitional {
t.Errorf("step %d: expected transitional=true on every step, got false", line.Step)
}
if len(line.Violations) != 0 {
t.Errorf("step %d: verifier must be skipped, got violations %v", line.Step, line.Violations)
}
}
if lines == 0 {
t.Fatal("expected trace lines, got none")
}
}
// TestRunner_CleanTreeStillVerified is the control: a single-screen hierarchy
// must not be marked transitional and the verifier must still run, surfacing
// the always-false predicate's violation on the onset step.
func TestRunner_CleanTreeStillVerified(t *testing.T) {
state := newHarnessWithSpec(t, violationSpec)
state.mock.HierarchyJSON = `{"attributes":{"resource-id":"HomeScreen"},"children":[]}`
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: 200 * time.Millisecond,
IdleTimeout: 20 * time.Millisecond,
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if !containsProperty(summary.Violations, "balanceNonNegative") {
t.Fatalf("expected verifier to surface balanceNonNegative on a clean tree, got %v", summary.Violations)
}
type traceLine struct {
Step int `json:"step"`
Transitional bool `json:"transitional"`
}
body, err := os.ReadFile(filepath.Join(state.writer.Directory(), "trace.jsonl"))
if err != nil {
t.Fatal(err)
}
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)
}
if line.Transitional {
t.Errorf("step %d: clean tree must not be marked transitional", line.Step)
}
}
}
// snapshotFailFirst wraps a mock driver so the first Snapshot call returns an
// error (mimicking a sidecar timeout while fetching view hierarchy), then
// delegates every subsequent call back to the mock.
type snapshotFailFirst struct {
*mockdriver.Driver
calls int
}
func (d *snapshotFailFirst) Snapshot(ctx context.Context) (string, driver.Image, error) {
d.calls++
if d.calls == 1 {
return "", driver.Image{}, errors.New("Timeout while fetching view hierarchy")
}
return d.Driver.Snapshot(ctx)
}
// TestRunner_NilHierarchyMarksTransitional verifies that when the sidecar's
// hierarchy fetch fails (nil tree), the runner marks the step transitional and
// skips the verifier instead of pushing a nil tree that would crash the spec.
// Subsequent steps with a clean tree still drive the verifier normally.
func TestRunner_NilHierarchyMarksTransitional(t *testing.T) {
state := newHarnessWithSpec(t, violationSpec)
state.mock.HierarchyJSON = `{"attributes":{"resource-id":"HomeScreen"},"children":[]}`
wrapped := &snapshotFailFirst{Driver: state.mock}
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: 200 * time.Millisecond,
IdleTimeout: 20 * time.Millisecond,
Driver: wrapped,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if summary.Steps < 2 {
t.Fatalf("need at least 2 steps to verify the first is skipped and the second runs, got %d", summary.Steps)
}
// violationSpec always() => false fires on the first verifier push. With
// step 1's verifier skipped, onset moves to step 2.
if len(summary.Violations) != 1 {
t.Fatalf("expected exactly one onset record, got %d: %v", len(summary.Violations), summary.Violations)
}
if summary.Violations[0].StepIndex != 2 {
t.Errorf("onset step: got %d, want 2 (step 1 verifier skipped due to nil tree)", summary.Violations[0].StepIndex)
}
type traceLine struct {
Step int `json:"step"`
Transitional bool `json:"transitional"`
Violations []string `json:"violations"`
}
body, err := os.ReadFile(filepath.Join(state.writer.Directory(), "trace.jsonl"))
if err != nil {
t.Fatal(err)
}
var first traceLine
if err := json.Unmarshal(bytes.SplitN(bytes.TrimSpace(body), []byte("\n"), 2)[0], &first); err != nil {
t.Fatalf("decode first trace line: %v", err)
}
if first.Step != 1 {
t.Fatalf("first trace line step: got %d, want 1", first.Step)
}
if !first.Transitional {
t.Error("first step must be marked transitional when the hierarchy fetch failed")
}
if len(first.Violations) != 0 {
t.Errorf("step 1 must skip the verifier; got violations %v", first.Violations)
}
}
// tapSelectorFailFirst wraps a mock driver so the first TapSelector call
// returns a gRPC DeadlineExceeded error (mimicking a sidecar-side RPC hang),
// then delegates every subsequent call back to the mock.
type tapSelectorFailFirst struct {
*mockdriver.Driver
calls int
}
func (d *tapSelectorFailFirst) TapSelector(ctx context.Context, selector string) error {
d.calls++
if d.calls == 1 {
return status.Error(codes.DeadlineExceeded, "boom")
}
return d.Driver.TapSelector(ctx, selector)
}
// TestRunner_TransientApplyErrorMarksTransitional verifies that a transient
// gRPC error from applyAction (e.g. sidecar RPC deadline) does not kill the
// run: the step is marked transitional, the verifier is skipped for it, and
// the loop continues with the next step running cleanly.
func TestRunner_TransientApplyErrorMarksTransitional(t *testing.T) {
state := newHarness(t)
wrapped := &tapSelectorFailFirst{Driver: state.mock}
var logBuf bytes.Buffer
logger := slog.New(slog.NewTextHandler(&logBuf, &slog.HandlerOptions{Level: slog.LevelWarn}))
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: 300 * time.Millisecond,
IdleTimeout: 20 * time.Millisecond,
Driver: wrapped,
Verifier: state.verifier,
TraceWriter: state.writer,
Logger: logger,
})
if err != nil {
t.Fatalf("Run must not return on transient apply error, got %v", err)
}
if summary.Steps < 2 {
t.Fatalf("need at least 2 steps to prove the loop continued past the failed apply, got %d", summary.Steps)
}
if len(summary.Violations) != 0 {
t.Errorf("transient apply error must not surface as a violation, got %v", summary.Violations)
}
if !strings.Contains(logBuf.String(), "apply error; marking step transitional") {
t.Errorf("expected apply-error WARN log, got %q", logBuf.String())
}
type traceLine struct {
Step int `json:"step"`
Transitional bool `json:"transitional"`
Violations []string `json:"violations"`
}
body, err := os.ReadFile(filepath.Join(state.writer.Directory(), "trace.jsonl"))
if err != nil {
t.Fatal(err)
}
lines := bytes.Split(bytes.TrimSpace(body), []byte("\n"))
var first, second traceLine
if err := json.Unmarshal(lines[0], &first); err != nil {
t.Fatalf("decode first trace line: %v", err)
}
if err := json.Unmarshal(lines[1], &second); err != nil {
t.Fatalf("decode second trace line: %v", err)
}
if first.Step != 1 || !first.Transitional {
t.Errorf("step 1 must be transitional after transient apply error, got step=%d transitional=%v", first.Step, first.Transitional)
}
if len(first.Violations) != 0 {
t.Errorf("transient apply step must have no violations, got %v", first.Violations)
}
if second.Step != 2 || second.Transitional {
t.Errorf("step 2 must run cleanly after the transient step, got step=%d transitional=%v", second.Step, second.Transitional)
}
}
// internalApplyErrorFailFirst wraps a mock driver so the first InputText call
// fails with the bare Internal error the iOS runner's input handler emits
// when it chokes (HTTP 500 with an empty body), then recovers.
type internalApplyErrorFailFirst struct {
*mockdriver.Driver
calls int
}
func (d *internalApplyErrorFailFirst) TapSelector(ctx context.Context, selector string) error {
d.calls++
if d.calls == 1 {
return status.Error(codes.Internal, "UnknownFailure(errorResponse=Request for inputText failed, code: 500, body: )")
}
return d.Driver.TapSelector(ctx, selector)
}
// TestRunner_InternalApplyErrorMarksTransitional pins the policy that a
// one-off device-side failure (e.g. the iOS input handler's bare 500) is
// absorbed as a transitional step instead of killing the run. Persistent
// failure is covered by the consecutive-failure cap.
func TestRunner_InternalApplyErrorMarksTransitional(t *testing.T) {
state := newHarness(t)
wrapped := &internalApplyErrorFailFirst{Driver: state.mock}
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: 300 * time.Millisecond,
IdleTimeout: 20 * time.Millisecond,
Driver: wrapped,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run must not return on a one-off internal apply error, got %v", err)
}
if summary.Steps < 2 {
t.Fatalf("need at least 2 steps to prove the loop continued, got %d", summary.Steps)
}
}
// TestIsWDADrop_Classification pins the fatal-vs-recoverable boundary: only
// the sidecar's explicit reconnect-failure signal is a drop. A structured
// UNAVAILABLE that happens to embed raw exception text (e.g. ConnectException
// from the original failure) means the sidecar already recovered and the run
// must continue.
// TestIsWDADrop_Classification pins isWDADrop to the exact phrase the sidecar
// throws at its reconnect site (sidecar DriverBackend.kt):
//
// throw IllegalStateException("WDA reconnect failed: $restartErr", cause)
//
// If that message is reworded on the Kotlin side without updating the Go
// matcher, a fatal, unrecoverable WDA drop is misclassified as transient and
// the run burns its budget retrying a dead channel instead of aborting.
func TestIsWDADrop_Classification(t *testing.T) {
// sidecarReconnectFailedMessage mirrors the literal the sidecar emits; the
// matcher's contract is keyed on this exact prefix.
const sidecarReconnectFailedMessage = "WDA reconnect failed"
cases := []struct {
name string
err error
want bool
}{
{
"unavailable with embedded ConnectException is recovered",
status.Error(codes.Unavailable, "connection dropped mid-action; the action may have applied: java.net.ConnectException: Failed to connect to /127.0.0.1:22161"),
false,
},
{
"sidecar reconnect-failed message is a drop",
status.Error(codes.Internal, "java.lang.IllegalStateException: "+sidecarReconnectFailedMessage+": IOSDriverTimeoutException"),
true,
},
{"generic internal is not a drop", status.Error(codes.Internal, "boom"), false},
}
for _, testCase := range cases {
t.Run(testCase.name, func(t *testing.T) {
if got := isWDADrop(testCase.err); got != testCase.want {
t.Errorf("got %v, want %v", got, testCase.want)
}
})
}
}
// tapSelectorAlwaysUnavailable wraps a mock driver so every TapSelector call
// fails with a transient Unavailable error, mimicking a device whose channel
// never recovers between steps.
type tapSelectorAlwaysUnavailable struct {
*mockdriver.Driver
}
func (d *tapSelectorAlwaysUnavailable) TapSelector(ctx context.Context, selector string) error {
return status.Error(codes.Unavailable, "connection dropped mid-action; the action may have applied")
}
// TestRunner_ConsecutiveTransientApplyFailuresAbort verifies the run fails
// fast once transient apply errors form an unbroken streak instead of burning
// the whole budget on a wedged device.
func TestRunner_ConsecutiveTransientApplyFailuresAbort(t *testing.T) {
state := newHarness(t)
wrapped := &tapSelectorAlwaysUnavailable{Driver: state.mock}
ctx, cancel := context.WithTimeout(context.Background(), 10*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: 5 * time.Second,
IdleTimeout: 20 * time.Millisecond,
Driver: wrapped,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err == nil {
t.Fatal("Run must abort after consecutive transient apply failures")
}
if !strings.Contains(err.Error(), "consecutive failures") {
t.Errorf("expected consecutive-failure abort, got %v", err)
}
// The aborting step returns before it is recorded, so the summary holds
// the steps before the cap-hitting one.
if summary.Steps != maxConsecutiveApplyFailures-1 {
t.Errorf("run must stop at the failure cap, got %d recorded steps", summary.Steps)
}
}
// TestRunner_WaitActionSkipsIdle ensures the runner does not call WaitForIdle
// after a Wait action - the action already provides settling time.
func TestRunner_WaitActionSkipsIdle(t *testing.T) {
const waitSpec = `
import { actions, Wait } from "@sanderling/spec";
globalThis.actions = actions(() => [Wait({ durationMillis: 5 })]);
`
state := newHarnessWithSpec(t, waitSpec)
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
_, err := Run(ctx, Options{
Duration: 150 * time.Millisecond,
IdleTimeout: 50 * time.Millisecond,
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
for _, action := range state.mock.Actions() {
if action.Kind == mockdriver.ActionWaitForIdle {
t.Fatalf("Wait action must skip WaitForIdle, got: %v", action)
}
}
}
func mustNewVerifier(t *testing.T) *verifier.Verifier {
t.Helper()
verifierInstance, err := verifier.New()
if err != nil {
t.Fatal(err)
}
return verifierInstance
}
func mustNewTraceWriter(t *testing.T) *trace.Writer {
t.Helper()
writer, err := trace.NewWriter(t.TempDir())
if err != nil {
t.Fatal(err)
}
t.Cleanup(func() { _ = writer.Close() })
return writer
}
func containsAction(actions []mockdriver.Action, kind mockdriver.ActionKind, payload string) bool {
for _, action := range actions {
if action.Kind != kind {
continue
}
switch kind {
case mockdriver.ActionLaunch:
if action.BundleID == payload {
return true
}
case mockdriver.ActionTapSelector:
if action.Selector == payload {
return true
}
case mockdriver.ActionTerminate:
return true
default:
return true
}
}
return false
}
func containsProperty(records []ViolationRecord, property string) bool {
for _, record := range records {
if slices.Contains(record.Properties, property) {
return true
}
}
return false
}
func TestRunner_RelaunchesWhenAppLeavesForeground(t *testing.T) {
state := newHarness(t)
// Always report a foreign app, so every step's guard must relaunch.
state.mock.ForegroundResults = []string{"com.android.chrome"}
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
_, err := Run(ctx, Options{
Duration: 100 * time.Millisecond,
IdleTimeout: 20 * time.Millisecond,
BundleID: "app.folio",
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
relaunches := 0
for _, a := range state.mock.Actions() {
if a.Kind == mockdriver.ActionLaunch && a.BundleID == "app.folio" && !a.ClearState {
relaunches++
}
}
if relaunches == 0 {
t.Fatal("expected runner to relaunch app.folio when foreground escaped, got none")
}
}
func TestRunner_NoRelaunchWhenAppInForeground(t *testing.T) {
state := newHarness(t)
state.mock.ForegroundResults = []string{"app.folio"}
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
_, err := Run(ctx, Options{
Duration: 100 * time.Millisecond,
IdleTimeout: 20 * time.Millisecond,
BundleID: "app.folio",
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
for _, a := range state.mock.Actions() {
if a.Kind == mockdriver.ActionLaunch {
t.Fatalf("expected no relaunch while app in foreground, got %v", a)
}
}
}
// TestRunner_WaitsForForegroundBeforeFirstAction verifies the startup gate
// brings the app forward (back-press + relaunch) before any tap fires when the
// device boots showing a system dialog.
func TestRunner_WaitsForForegroundBeforeFirstAction(t *testing.T) {
state := newHarness(t)
// First the device shows a system setup screen, then the app is on top.
state.mock.ForegroundResults = []string{"com.google.android.setupwizard", "app.folio"}
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
_, err := Run(ctx, Options{
Duration: 100 * time.Millisecond,
IdleTimeout: 20 * time.Millisecond,
BundleID: "app.folio",
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
actions := state.mock.Actions()
firstLaunch, firstTap := -1, -1
backPressed := false
for i, a := range actions {
switch {
case a.Kind == mockdriver.ActionLaunch && firstLaunch < 0:
firstLaunch = i
case a.Kind == mockdriver.ActionTap && firstTap < 0:
firstTap = i
case a.Kind == mockdriver.ActionPressKey && a.Key == "back":
backPressed = true
}
}
if firstLaunch < 0 {
t.Fatal("expected a relaunch to bring the app forward, got none")
}
if !backPressed {
t.Fatal("expected a back-press to dismiss the system dialog, got none")
}
if firstTap >= 0 && firstLaunch > firstTap {
t.Fatalf("expected the foreground gate (launch at %d) before the first tap (at %d)", firstLaunch, firstTap)
}
}
// TestRunner_WaitsForWindowDrawnBeforeFirstAction verifies the startup gate
// keeps waiting while the app is the resumed activity but its window has not
// drawn yet (a leftover screen still focused). It must poll the focused-window
// signal rather than relaunching, and only proceed once the window names the
// app.
func TestRunner_WaitsForWindowDrawnBeforeFirstAction(t *testing.T) {
state := newHarness(t)
// The app is resumed immediately, but its window lags: the outgoing
// settings screen stays focused for two checks before the app draws.
state.mock.ForegroundResults = []string{"app.folio"}
state.mock.FocusedWindowResults = []string{"com.android.settings", "com.android.settings", "app.folio"}
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
_, err := Run(ctx, Options{
Duration: 100 * time.Millisecond,
IdleTimeout: 20 * time.Millisecond,
BundleID: "app.folio",
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
// The gate must have polled the focused window until it named the app,
// i.e. at least the three queued results were consumed.
if calls := state.mock.FocusedWindowCalls(); calls < 3 {
t.Fatalf("expected the gate to poll the focused window until drawn (>=3 calls), got %d", calls)
}
// The resumed app was never a foreign app, so the gate must not relaunch
// or back-press to "fix" a window that simply had not drawn yet.
for _, a := range state.mock.Actions() {
if a.Kind == mockdriver.ActionPressKey && a.Key == "back" {
t.Fatal("expected no back-press while waiting for the window to draw")
}
}
}
// TestAwaitForeground_RelaunchesThenWaitsForWindow locks the per-step scope
// guard's recovery: after the app leaves to the launcher, it must relaunch AND
// keep polling the focused window until it names the app, so the step never
// observes or acts while the launcher is on screen (where InputText would land
// in the launcher's type-to-search filter). A single fire-and-forget relaunch,
// which returns before the window draws on a slow physical device, is the bug
// this guards against.
func TestAwaitForeground_RelaunchesThenWaitsForWindow(t *testing.T) {
m := mockdriver.New()
// Foreground: launcher on the first poll (still gone), then the app. Focus:
// the launcher window lingers one extra poll before the app's window draws.
m.ForegroundResults = []string{"com.android.launcher", "app.folio"}
m.FocusedWindowResults = []string{"com.android.launcher", "app.folio"}
logger := slog.New(slog.NewTextHandler(io.Discard, &slog.HandlerOptions{Level: slog.LevelWarn}))
options := Options{BundleID: "app.folio", Driver: m, IdleTimeout: 10 * time.Millisecond}
awaitForeground(context.Background(), options, logger, 7)
relaunches, backs := 0, 0
for _, a := range m.Actions() {
switch {
case a.Kind == mockdriver.ActionLaunch && a.BundleID == "app.folio" && !a.ClearState:
relaunches++
case a.Kind == mockdriver.ActionPressKey && a.Key == "back":
backs++
}
}
if relaunches != 1 {
t.Fatalf("expected exactly one relaunch while the app was gone, got %d", relaunches)
}
if backs != 1 {
t.Fatalf("expected one back-press to dismiss a possible dialog before relaunch, got %d", backs)
}
// The window lagged one poll behind the resumed activity, so the focused
// window must have been queried at least twice before the gate returned.
if calls := m.FocusedWindowCalls(); calls < 2 {
t.Fatalf("expected the guard to poll the focused window until drawn (>=2), got %d", calls)
}
}
func TestClampGestureToSafeArea_KeepsOriginBelowShadeStrip(t *testing.T) {
screen := hierarchy.Bounds{Left: 0, Top: 0, Right: 1080, Bottom: 2400} // marginY = 200
// Origin in the shade strip: the whole segment shifts down by 138, so the
// downward gesture stays downward (447 -> 585) instead of reversing.
fromX, fromY, toX, toY := clampGestureToSafeArea(802, 62, 802, 447, screen)
if fromX != 802 || fromY != 200 || toX != 802 || toY != 585 {
t.Errorf("segment not translated below the shade strip: from=(%d,%d) to=(%d,%d), want from=(802,200) to=(802,585)", fromX, fromY, toX, toY)
}
fromX, fromY, _, _ = clampGestureToSafeArea(5, 1200, 540, 1200, screen)
if fromX != 5 || fromY != 1200 {
t.Errorf("side origin must pass through, got (%d,%d), want (5,1200)", fromX, fromY)
}
fromX, fromY, _, _ = clampGestureToSafeArea(540, 2399, 540, 1200, screen)
if fromX != 540 || fromY != 2399 {
t.Errorf("bottom origin must pass through, got (%d,%d), want (540,2399)", fromX, fromY)
}
_, _, toX, toY = clampGestureToSafeArea(540, 1200, -50, 9999, screen)
if toX != 0 || toY != 2400 {
t.Errorf("off-screen destination not clamped to screen edges: got (%d,%d), want (0,2400)", toX, toY)
}
fromX, _, _, _ = clampGestureToSafeArea(-30, 1200, 540, 1200, screen)
if fromX != 0 {
t.Errorf("off-screen origin x must clamp to 0, got %d", fromX)
}
fromX, fromY, toX, toY = clampGestureToSafeArea(802, 62, 802, 447, hierarchy.Bounds{})
if fromX != 802 || fromY != 62 || toX != 802 || toY != 447 {
t.Error("coordinates must pass through unchanged when screen size is unknown")
}
}
// TestScreenBounds_UsesMaxExtentNotRoot guards the screen-size source: the
// Android hierarchy root reports zero bounds, so the screen rectangle must come
// from the maximum element extent or the gesture clamp silently no-ops.
func TestScreenBounds_UsesMaxExtentNotRoot(t *testing.T) {
tree := &hierarchy.Tree{
Root: &hierarchy.Node{Element: hierarchy.Element{Bounds: hierarchy.Bounds{}}},
Elements: []*hierarchy.Element{
{Bounds: hierarchy.Bounds{}},
{Bounds: hierarchy.Bounds{Left: 0, Top: 0, Right: 1080, Bottom: 2160}},
{Bounds: hierarchy.Bounds{Left: 0, Top: 2268, Right: 1080, Bottom: 2400}},
},
}
got := screenBounds(tree)
if got.Right != 1080 || got.Bottom != 2400 {
t.Fatalf("screenBounds = %+v, want right=1080 bottom=2400", got)
}
}
// TestEnsureForeground_DismissesSystemOverlay locks the shade fix: when the app
// is still the resumed activity but a system overlay (notification shade) holds
// the focused window, the guard must dismiss it with back rather than relaunch
// or act on the obscured app.
func TestEnsureForeground_DismissesSystemOverlay(t *testing.T) {
m := mockdriver.New()
// Resumed activity stays the app; the focused window is the shade.
m.ForegroundResults = []string{"app.folio"}
m.FocusedWindowResults = []string{"com.android.systemui"}
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")
}
backs, relaunches := 0, 0
for _, a := range m.Actions() {
switch {
case a.Kind == mockdriver.ActionPressKey && a.Key == "back":
backs++
case a.Kind == mockdriver.ActionLaunch:
relaunches++
}
}
if backs != 1 {
t.Fatalf("expected one back-press to collapse the shade, got %d", backs)
}
if relaunches != 0 {
t.Fatalf("a resumed-but-obscured app must not be relaunched, got %d relaunches", relaunches)
}
}
func TestAppIsForeground(t *testing.T) {
readErr := errors.New("adb read failed")
cases := []struct {
name string
bundleID string
foreground []string
foregErr error
focused []string
focusErr error
want bool
}{
{name: "no bundle id", bundleID: "", foreground: []string{"app.folio"}, want: true},
{name: "foreground unknown", bundleID: "app.folio", foreground: nil, want: true},
{name: "foreground read error", bundleID: "app.folio", foregErr: readErr, want: true},
{name: "foreign foreground", bundleID: "app.folio", foreground: []string{"com.android.chrome"}, want: false},
{name: "app resumed and focused", bundleID: "app.folio", foreground: []string{"app.folio"}, focused: []string{"app.folio"}, want: true},
{name: "app resumed but overlay focused", bundleID: "app.folio", foreground: []string{"app.folio"}, focused: []string{"com.android.systemui"}, want: false},
{name: "app resumed, focus unknown", bundleID: "app.folio", foreground: []string{"app.folio"}, focused: []string{""}, want: true},
{name: "app resumed, focus read error", bundleID: "app.folio", foreground: []string{"app.folio"}, focusErr: readErr, want: true},
}
for _, tc := range cases {
t.Run(tc.name, func(t *testing.T) {
m := mockdriver.New()
m.ForegroundResults = tc.foreground
m.ForegroundErr = tc.foregErr
m.FocusedWindowResults = tc.focused
m.FocusedWindowErr = tc.focusErr
options := Options{BundleID: tc.bundleID, Driver: m}
if got := appIsForeground(context.Background(), options); got != tc.want {
t.Errorf("appIsForeground = %v, want %v", got, tc.want)
}
})
}
}
// A system overlay holds focus while the app stays resumed every step, so the
// fixture's id:next tap must never reach the driver.
func TestRunner_SkipsActionWhenOverlayStealsFocusAtApplyTime(t *testing.T) {
state := newHarness(t)
state.mock.ForegroundResults = []string{"app.folio"}
state.mock.FocusedWindowResults = []string{"app.folio", "com.android.systemui"}
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: 100 * time.Millisecond,
IdleTimeout: 20 * time.Millisecond,
BundleID: "app.folio",
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if summary.Steps == 0 {
t.Fatal("expected the loop to run steps")
}
if containsAction(state.mock.Actions(), mockdriver.ActionTapSelector, "id:next") {
t.Error("apply-time guard failed: a tap fired while a system overlay held focus")
}
}
// TestRunner_StopOnViolationEndsAtTheFirstViolation pins the gate CI runs on:
// a step budget of 8 against a spec that only violates on the third step must
// end on step 3 and write nothing after it, so the trace's last state is the
// one that produced the violation.
func TestRunner_StopOnViolationEndsAtTheFirstViolation(t *testing.T) {
const thirdStepViolationSpec = `
import { actions, always, extract } from "@sanderling/spec";
let observed = 0;
const tick = extract(() => ++observed);
globalThis.properties = {
staysUnderThree: always(() => tick.current < 3),
};
globalThis.actions = actions(() => []);
`
state := newHarnessWithSpec(t, thirdStepViolationSpec)
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: time.Hour,
IdleTimeout: 20 * time.Millisecond,
MaxSteps: 8,
StopOnViolation: true,
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if !containsProperty(summary.Violations, "staysUnderThree") {
t.Fatalf("expected staysUnderThree to fire, got %v", summary.Violations)
}
if summary.Steps != 3 {
t.Errorf("steps: got %d, want 3 (the run must stop at the violating step, not run the 8-step budget)",
summary.Steps)
}
for _, step := range traceStepIndices(t, state.writer.Directory()) {
if step > summary.Steps {
t.Errorf("trace kept stepping after the violation: found step %d past step %d",
step, summary.Steps)
}
}
}
// TestRunner_WithoutStopOnViolationRunsTheWholeBudget is the other half: the
// default must stay a full-budget fuzz run, so turning the flag on is the only
// thing that shortens a run.
func TestRunner_WithoutStopOnViolationRunsTheWholeBudget(t *testing.T) {
state := newHarnessWithSpec(t, violationSpec)
ctx, cancel := context.WithTimeout(context.Background(), 5*time.Second)
defer cancel()
summary, err := Run(ctx, Options{
Duration: time.Hour,
IdleTimeout: 20 * time.Millisecond,
MaxSteps: 4,
Driver: state.mock,
Verifier: state.verifier,
TraceWriter: state.writer,
})
if err != nil {
t.Fatalf("Run: %v", err)
}
if summary.Steps != 4 {
t.Errorf("steps: got %d, want 4; a violation must not shorten a default run", summary.Steps)
}
}
// traceStepIndices reads every step index the trace recorded, so a test can
// assert on what the run actually wrote rather than on the summary alone.
func traceStepIndices(t *testing.T, directory string) []int {
t.Helper()
file, err := os.Open(filepath.Join(directory, "trace.jsonl"))
if err != nil {
t.Fatal(err)
}
defer file.Close()
var steps []int
scanner := bufio.NewScanner(file)
scanner.Buffer(make([]byte, 0, 64*1024), 8*1024*1024)
for scanner.Scan() {
var line struct {
Step int `json:"step"`
}
if err := json.Unmarshal(scanner.Bytes(), &line); err != nil {
t.Fatalf("trace line decode: %v", err)
}
steps = append(steps, line.Step)
}
if err := scanner.Err(); err != nil {
t.Fatalf("scan trace: %v", err)
}
return steps
}