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بنقرة واحدة

fastworkflow-diagnostics-and-tooling

النجوم٤٩
التفرعات١٥
آخر تحديث١١ يوليو ٢٠٢٦ في ١٥:٠٧

Load this skill when you need to MEASURE a fastWorkflow workflow instead of eyeballing it — inspect ___command_info trained artifacts, check whether cached command snapshots are stale (fingerprint FRESH/STALE), capture or read a turn's command traces / action.jsonl, smoke-test intent-classifier accuracy, configure LOG_LEVEL, inspect the DSPy LLM cache, or hit the server probe endpoints. Trigger phrases/symptoms: "why did it rebuild", "is this workflow trained", "what did the agent actually do", "traces are empty", "stale cache", "threshold.json", "confusion between commands", "cache hit hides the LLM call". Do NOT load for diagnosing a specific failure end-to-end (use fastworkflow-debugging-playbook), for NLU/model theory (use fastworkflow-nlu-pipeline-reference), or for statistics like pass^k variance (use fastworkflow-proof-and-analysis-toolkit).

التثبيت

التثبيت باستخدام Codex أو Claude انسخ هذا Prompt والصقه في Codex أو Claude أو مساعد آخر ليراجع صفحة Skill ويثبّتها لك.

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SKILL.md
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