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systematic-debugging
4-phase root cause debugging: understand bugs before fixing.
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4-phase root cause debugging: understand bugs before fixing.
Instalar com Codex ou Claude Copie este prompt, cole no Codex, Claude ou outro assistente e deixe que ele revise a página da skill e instale para você.
Baseado na classificação ocupacional SOC
Create or update AGENTS.md / CLAUDE.md using industry best practices. Use when the user asks to create AGENTS.md, update project documentation, or after code changes that need documentation updates.
Resolve git merge/rebase conflicts by analyzing git history, commit intent, and code context. Use when merge or rebase produces conflicts.
Save successful workflows as reusable pi skills. Use when a workflow worked well and should be preserved for future use.
TDD: enforce RED-GREEN-REFACTOR, tests before code.
| name | systematic-debugging |
| description | 4-phase root cause debugging: understand bugs before fixing. |
Random fixes waste time and create new bugs. Quick patches mask underlying issues.
Core principle: ALWAYS find root cause before attempting fixes. Symptom fixes are failure.
Violating the letter of this process is violating the spirit of debugging.
NO FIXES WITHOUT ROOT CAUSE INVESTIGATION FIRST
If you haven't completed Phase 1, you cannot propose fixes.
Use for ANY technical issue:
Use this ESPECIALLY when:
Don't skip when:
You MUST complete each phase before proceeding to the next.
BEFORE attempting ANY fix:
Action: Use read on the relevant source files. Use bash with grep -rn to find the error string in the codebase.
Action: Use bash to run the failing test or trigger the bug:
# Run specific failing test
uv run pytest tests/test_module.py::test_name -v
# Run with verbose output
uv run pytest tests/test_module.py -v --tb=long
Action:
# Recent commits
git log --oneline -10
# Uncommitted changes
git diff
# Changes in specific file
git log -p --follow src/problematic_file.py | head -100
WHEN system has multiple components (API → service → database, CI → build → deploy):
BEFORE proposing fixes, add diagnostic instrumentation:
For EACH component boundary:
Run once to gather evidence showing WHERE it breaks. THEN analyze evidence to identify the failing component. THEN investigate that specific component.
WHEN error is deep in the call stack:
Action: Use bash with grep to trace references:
# Find where the function is called
grep -rn "function_name(" src/ --include="*.py"
# Find where the variable is set
grep -rn "variable_name\s*=" src/ --include="*.py"
STOP: Do not proceed to Phase 2 until you understand WHY it's happening.
Find the pattern before fixing:
Action: Use bash with grep to find comparable patterns:
grep -rn "similar_pattern" src/ --include="*.py"
Scientific method:
Fix the root cause, not the symptom:
test-driven-development skill# Run the specific regression test
uv run pytest tests/test_module.py::test_regression -v
# Run full suite — no regressions
uv run pytest tests/ -q
Pattern indicating an architectural problem:
STOP and question fundamentals:
Discuss with the user before attempting more fixes.
This is NOT a failed hypothesis — this is a wrong architecture.
If you catch yourself thinking:
ALL of these mean: STOP. Return to Phase 1.
If 3+ fixes failed: Question the architecture (Phase 4 step 5).
| Excuse | Reality |
|---|---|
| "Issue is simple, don't need process" | Simple issues have root causes too. Process is fast for simple bugs. |
| "Emergency, no time for process" | Systematic debugging is FASTER than guess-and-check thrashing. |
| "Just try this first, then investigate" | First fix sets the pattern. Do it right from the start. |
| "I'll write test after confirming fix works" | Untested fixes don't stick. Test first proves it. |
| "Multiple fixes at once saves time" | Can't isolate what worked. Causes new bugs. |
| "Reference too long, I'll adapt the pattern" | Partial understanding guarantees bugs. Read it completely. |
| "I see the problem, let me fix it" | Seeing symptoms ≠ understanding root cause. |
| "One more fix attempt" (after 2+ failures) | 3+ failures = architectural problem. Question the pattern, don't fix again. |
| Phase | Key Activities | Success Criteria |
|---|---|---|
| 1. Root Cause | Read errors, reproduce, check changes, gather evidence, trace data flow | Understand WHAT and WHY |
| 2. Pattern | Find working examples, compare, identify differences | Know what's different |
| 3. Hypothesis | Form theory, test minimally, one variable at a time | Confirmed or new hypothesis |
| 4. Implementation | Create regression test, fix root cause, verify | Bug resolved, all tests pass |
Use these pi tools during Phase 1:
bash (grep, find, rg) — Find error strings, trace function calls, locate patternsread — Read source code for precise analysisbash — Run tests, check git history, reproduce bugsweb_search — Research error messages, library docsFor complex multi-component debugging, the orchestrator dispatches the debugger agent:
The debugger diagnoses only — it does not modify files. The orchestrator delegates the actual fix to the appropriate language specialist.
When fixing bugs:
From debugging sessions:
No shortcuts. No guessing. Systematic always wins.