Interface Protocols · All levels
VIP & Agent Architecture: Debug Playbook
Debug Playbook for VIP & Agent Architecture.
Debug playbook
Debug Playbook for VIP & Agent Architecture focuses on stimulus coverage, monitor mismatch rate, illegal sequence detection. The goal is to connect the observable symptom to protocol mechanism, ownership, and regression risk.
Protocol debug is a search for the FIRST deviation, not the loudest symptom. Timeouts and error flags are usually many cycles downstream of the real cause.
Root-cause tree
ROOT-CAUSE TREE — VIP & Agent Architecture
stimulus coverage, monitor mismatch rate, illegal sequence detection looks wrong
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reproducible?
/ \
no yes
| |
flaky env same first transaction every time?
/ seed / \
yes no
| |
protocol rule timing/reset/PVT
or config bug or load-dependentFreeze the failing seed, firmware tag, and spec revision.
Find the first bad transaction, not the loudest downstream timeout.
Map the transaction to signals and VIP monitor events.
Classify the failure: protocol rule, integration config, timing/reset, or performance pressure.
Prove the mechanism with one reduced sequence.
Patch the smallest owner-controlled boundary and rerun compliance plus workload traffic.
Review memo template
STAFF PROTOCOL REVIEW MEMO — Protocol Verification & Compliance / VIP & Agent Architecture
1. Symptom
- Watched metric: stimulus coverage, monitor mismatch rate, illegal sequence detection
- Failing interface: <master/slave/endpoint/controller/PHY>
- Transaction identity: <ID/tag/address/endpoint/lane>
- Repro setup: <sim/emulation/FPGA/silicon + firmware tag>
2. Mechanism hypothesis
- Primary mechanism: VIP separates driver, monitor, sequencer, checker, and coverage so protocol intent is observable and reusable.
- Competing hypothesis: <timing, reset, bridge, ordering, firmware, or VIP issue>
- Missing evidence: <waveform, analyzer trace, counter, spec clause, or log>
3. Proposed action
- Minimal reversible change: <RTL, register setting, bridge config, scheduler, VIP check>
- Expected metric movement: <delta and workload>
- Regression risk: ordering, compatibility, performance, power, area, or timing
4. Signoff
- Re-run artifact: UVM agent diagram, monitor transaction log, checker failure
- Required owners: verification lead, VIP owner, RTL owner
- Final decision: fix, waive, document limitation, or escalate to architectureProtocol deep dive
Verification closes the gap between 'works in directed test' and 'legal under all stressed traffic'.
Concept diagram
VERIFICATION CLOSURE LOOP
spec clause -> test -> assertion -> coverage -> waiver -> signoff
^ |
+--------- gap found --------+Metric graph
COVERAGE vs ESCAPE RATE
escapes
|*
| *
| *
| ** <- knee: more random helps
| ****
+----------------> constrained-random depthMetrics and artifacts to collect
compliance pass rate
coverage closure
scoreboard mismatch rate
assertion fire count
waiver log
Mini case study
Block passed VIP compliance but chip failed: system test omitted cross-master ID reuse through a bridge. Scoreboard key did not include upstream port ID.
Debug branches
If VIP pass but silicon fail, check integration assumptions.
If scoreboard noisy, fix key (ID+port+addr).
If coverage plateau, add compliance gap analysis not more repeats.
Senior review question
Ask: what is the first transaction that deviates, and which spec rule does it test?
Key takeaways
Connect every protocol claim to a transaction identity and measurable metric.
Store the artifact (waveform, log, counter) next to every signoff decision.
Common pitfalls
Debugging timeouts without finding the first bad transaction.
Quoting peak bus width without payload efficiency and retry overhead.
Treating VIP compliance as a substitute for system integration replay.
Principal review addendum
Re-read VIP & Agent Architecture against one concrete product workload, not a synthetic directed test.
VIP separates driver, monitor, sequencer, checker, and coverage so protocol intent is observable and reusable.