Formal Verification · All levels
Properties and Assertions: Safety, Liveness, and Sound Modeling: Worked Example
Worked Example for Properties and Assertions: Safety, Liveness, and Sound Modeling.
Worked example
Worked Example for Properties and Assertions: Safety, Liveness, and Sound Modeling is anchored on non-vacuous closure rate, counterexample turnaround, and residual-risk trend by requirement class. Convert outcomes into assumption-aware, evidence-backed actions.
A regression appears in non-vacuous closure rate, counterexample turnaround, and residual-risk trend by requirement class. Strong closure isolates first divergence, proves mechanism, applies one reversible fix, and validates blast radius before signoff.
Execution lens
FORMAL EXECUTION FLOW - Properties and Assertions: Safety, Liveness, and Sound Modeling
requirement intent and risk class
|
v
property and assumption modeling
|
v
proof engine exploration and trace extraction
|
v
counterexample classification and fix hypothesis
|
v
re-proof, coverage audit, and signoff decisionDecision matrix
EVIDENCE MATRIX - Properties and Assertions: Safety, Liveness, and Sound Modeling
+-----------------------------+--------------------------------+--------------------------------+---------------------------+
| Evidence | Tells you | Does not prove | Next action |
+-----------------------------+--------------------------------+--------------------------------+---------------------------+
| property status by class | closure shape by requirement | model realism | pair with cover reachability |
| vacuity and trigger checks | assertion meaningfulness | full legal-path exploration | inspect assumptions |
| counterexample traces | concrete divergence path | complete bug-space closure | classify and replay |
| assumption audit trail | model boundary confidence | implementation correctness | review spec traceability |
| before/after trend packet | mitigation movement quality | long-window stability | run broader matrix |
+-----------------------------+--------------------------------+--------------------------------+---------------------------+Formal deep dive
FPV foundations are reliable only when assumptions, reset semantics, and requirement intent are explicitly modeled and audited.
Concept diagram
FPV FOUNDATION LOOP
requirements -> property set -> assumptions and reset model -> prove/fail traces -> closure auditMetric graph
FOUNDATION HEALTH
vacuous passes ████
reachable proofs ███████
inconclusive backlog █████
reopened properties ███Metrics and artifacts to collect
assumption traceability matrix
vacuity and reachability status
proof core relevance summary
counterexample classification trend
Mini case study
A green-looking run was invalidated after legal-mode covers failed, exposing assumptions that removed realistic traffic.
Debug branches
Validate requirement-to-property mapping before tuning runtime.
Check legal scenario reachability after every assumption change.
Classify first divergence as model issue or RTL bug.
Senior review question
Ask: which requirement intent is proven, under which assumptions, and what residual risk remains?
Key takeaways
Tie each proof claim to assumption boundaries and reachability evidence.
Prefer minimal reversible fixes and preserve legal behavior visibility.
Common pitfalls
Treating runtime reduction as proof-quality improvement without audits.
Declaring closure while critical covers remain unreachable.
Using broad waivers instead of first-divergence root-cause ownership.
Worked-example reasoning
Start from requirement intent and map every trace event back to modeled obligations.
Close with smallest fix that preserves legal scenario reachability.