fix(ltl): arm a one-shot root once per run

A root that carries its own horizon is one obligation for the whole run, not one
per observation. Re-instantiating a top-level eventually monitored G F<=n(p)
instead of F<=n(p) and left one live obligation per step behind; a bounded
always restarted its window every step and never closed.

Claude-Session: https://claude.ai/code/session_01Fj4wJUikdABuMQEETwW55J
This commit is contained in:
pj committed 2026-08-12 16:46:43 +05:30
1 parent 413e47467e
commit 3b8e8601b4
2 files changed
+159 -7

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+53 -7
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@@ -37,6 +37,10 @@ type Evaluator struct {
violated bool
steps int
violation *Violation
// oneShot marks a root that is armed once at the first observation rather
// than re-asserted at every one; armed records that it has been.
oneShot bool
armed bool
}
// obligation pairs a residual formula with the step that spawned it, so a
@@ -62,7 +66,8 @@ type Violation struct {
}
func NewEvaluator(formula Formula) *Evaluator {
return &Evaluator{root: nnf(formula)}
normalized := nnf(formula)
return &Evaluator{root: normalized, oneShot: isOneShotRoot(normalized)}
}
// Observe evaluates the formula against the current state and returns the
@@ -89,8 +94,11 @@ func (e *Evaluator) ObserveAtStep(now time.Time, step int) Verdict {
}
e.steps = step
fresh := obligation{formula: rootObligation(e.root), origin: step}
obligations := append(e.pending, fresh)
obligations := make([]obligation, 0, len(e.pending)+1)
obligations = append(obligations, e.pending...)
if formula, ok := e.instantiateRoot(); ok {
obligations = append(obligations, obligation{formula: formula, origin: step})
}
e.pending = e.pending[:0]
for _, entry := range obligations {
@@ -267,10 +275,48 @@ func (e *Evaluator) Residual() Formula {
return combined
}
// rootObligation returns the formula to instantiate at each step. An outer
// Always is stripped so its inner is re-evaluated every step; any other root
// formula is itself re-instantiated each step (matching the v0.1 semantics
// where a bare Thunk is re-observed on every call).
// instantiateRoot returns the obligation to register for this observation, and
// whether there is one at all. A one-shot root is armed only at the first
// observation; a recurring root is re-asserted at every one.
func (e *Evaluator) instantiateRoot() (Formula, bool) {
if !e.oneShot {
return rootObligation(e.root), true
}
if e.armed {
return nil, false
}
e.armed = true
return e.root, true
}
// isOneShotRoot reports whether a root formula is a single obligation for the
// whole run rather than one instance per observation.
//
// A root that carries its own horizon is one-shot: an eventually is a
// reachability goal ("this happens at some point"), and a bounded always is a
// single window. Re-instantiating either at every step would monitor a
// different property -- G F<=n(p) instead of F<=n(p), and G(p) instead of
// G<=n(p), the latter because a re-instantiated window restarts and never
// closes -- and would leave one live obligation per step behind.
//
// Every other root keeps the implicit-always reading: an unbounded always
// re-instantiates its inner (which is what gives each instance its own origin
// step), and a bare predicate or connective is re-asserted each observation.
func isOneShotRoot(root Formula) bool {
switch concrete := root.(type) {
case EventuallyFormula:
return true
case AlwaysFormula:
return concrete.HasStepBound || concrete.HasDeadline || concrete.Duration > 0
default:
return false
}
}
// rootObligation returns the formula a recurring root instantiates at each
// step. An outer Always is stripped so its inner is re-evaluated every step;
// any other root formula is itself re-instantiated each step (matching the
// v0.1 semantics where a bare Thunk is re-observed on every call).
func rootObligation(root Formula) Formula {
if always, ok := root.(AlwaysFormula); ok {
return always.Inner
+106
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@@ -0,0 +1,106 @@
package ltl
import (
"testing"
"time"
)
// TestRoot_BoundedEventuallyStaysOneObligation locks the cost of the one-shot
// root. A duration-bounded top-level eventually is one reachability goal, so
// the pending set holds one obligation for the whole run. Re-instantiating it
// every step monitored G F<=n(p) instead and left one live obligation per step
// behind: a 553-step run carried 553 of them and re-ran the predicate once per
// obligation per step.
func TestRoot_BoundedEventuallyStaysOneObligation(t *testing.T) {
const steps = 600
calls := 0
formula := EventuallyWithin(ThunkNamed("p", func() (bool, error) {
calls++
return false, nil
}), 300*time.Second)
evaluator := NewEvaluator(formula)
base := time.Unix(0, 0)
for index := range steps {
if got := evaluator.ObserveAtStep(base.Add(time.Duration(index)*110*time.Millisecond), index+1); got != VerdictPending {
t.Fatalf("step %d: got %v, want pending", index+1, got)
}
if len(evaluator.pending) != 1 {
t.Fatalf("step %d: %d pending obligations, want 1", index+1, len(evaluator.pending))
}
}
if calls != steps {
t.Errorf("predicate ran %d times over %d steps, want one call per step", calls, steps)
}
}
// TestRoot_TopLevelEventuallyIsSatisfiedOnce pins the semantics behind that
// bound: a top-level eventually is discharged for good the first time it is
// satisfied. Under the old implicit-always reading it was re-armed at every
// step, so a property that had already been reached could still violate later.
func TestRoot_TopLevelEventuallyIsSatisfiedOnce(t *testing.T) {
reached := false
evaluator := NewEvaluator(EventuallyWithinSteps(ThunkNamed("p", func() (bool, error) {
return reached, nil
}), 2))
if got := evaluator.ObserveAtStep(time.Unix(0, 0), 1); got != VerdictPending {
t.Fatalf("step 1: got %v, want pending", got)
}
reached = true
if got := evaluator.ObserveAtStep(time.Unix(1, 0), 2); got != VerdictHolds {
t.Fatalf("step 2: got %v, want holds", got)
}
reached = false
for index := 3; index <= 6; index++ {
if got := evaluator.ObserveAtStep(time.Unix(int64(index), 0), index); got != VerdictHolds {
t.Fatalf("step %d: got %v, want holds (the goal was already reached)", index, got)
}
}
if got := evaluator.Finalize(); got != VerdictHolds {
t.Errorf("Finalize = %v, want holds", got)
}
}
// TestRoot_BoundedAlwaysKeepsItsBound: a bounded root Always is a single
// window, not a recurrence. Stripping it and re-instantiating its inner every
// step dropped the bound, so G<=1(p) behaved as G(p) and a false p after the
// window closed still violated.
func TestRoot_BoundedAlwaysKeepsItsBound(t *testing.T) {
values := []bool{true, true, false}
step := 0
formula := AlwaysFormula{
Inner: ThunkNamed("p", func() (bool, error) { return values[step], nil }),
StepBound: 1,
HasStepBound: true,
}
evaluator := NewEvaluator(formula)
for index := range values {
step = index
if got := evaluator.ObserveAtStep(time.Unix(int64(index), 0), index+1); got == VerdictViolated {
t.Fatalf("step %d: violated outside the 1-step window", index+1)
}
}
}
// TestRoot_UnboundedAlwaysStillReInstantiates: the one-shot rule must not touch
// the recurrence root every spec property is built on. Each step gets its own
// instance of the inner, which is what gives a deferred failure the origin step
// that armed it.
func TestRoot_UnboundedAlwaysStillReInstantiates(t *testing.T) {
values := []bool{true, true, false}
step := 0
evaluator := NewEvaluator(Always(ThunkNamed("p", func() (bool, error) {
return values[step], nil
})))
for index := range 2 {
step = index
if got := evaluator.ObserveAtStep(time.Unix(int64(index), 0), index+1); got != VerdictHolds {
t.Fatalf("step %d: got %v, want holds", index+1, got)
}
}
step = 2
if got := evaluator.ObserveAtStep(time.Unix(2, 0), 3); got != VerdictViolated {
t.Errorf("step 3: got %v, want violated", got)
}
}