Triggers
- debug
- debugging
- bug fix
- test failure
- test failing
- root cause
- broken test
- error trace
- stack trace
- unexpected behavior
- flaky test
- build failure
- integration issue
- performance problem
- why is this failing
- fix this bug
Systematic Debugging
Overview
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.
The Iron Law
NO FIXES WITHOUT ROOT CAUSE INVESTIGATION FIRST
If you haven't completed Phase 1, you cannot propose fixes.
When to Use
Use for ANY technical issue:
- Test failures
- Bugs in production
- Unexpected behavior
- Performance problems
- Build failures
- Integration issues
Use this ESPECIALLY when:
- Under time pressure (emergencies make guessing tempting)
- "Just one quick fix" seems obvious
- You've already tried multiple fixes
- Previous fix didn't work
- You don't fully understand the issue
Don't skip when:
- Issue seems simple (simple bugs have root causes too)
- You're in a hurry (rushing guarantees rework)
- Manager wants it fixed NOW (systematic is faster than thrashing)
The Four Phases
You MUST complete each phase before proceeding to the next.
Phase 1: Root Cause Investigation
BEFORE attempting ANY fix:
Read Error Messages Carefully
- Don't skip past errors or warnings
- They often contain the exact solution
- Read stack traces completely
- Note line numbers, file paths, error codes
Reproduce Consistently
- Can you trigger it reliably?
- What are the exact steps?
- Does it happen every time?
- If not reproducible → gather more data, don't guess
Check Recent Changes
- What changed that could cause this?
- Git diff, recent commits
- New dependencies, config changes
- Environmental differences
Gather Evidence in Multi-Component Systems
WHEN system has multiple components (CI → build → signing, API → service → database):
BEFORE proposing fixes, add diagnostic instrumentation:
For EACH component boundary:
- Log what data enters component
- Log what data exits component
- Verify environment/config propagation
- Check state at each layer
Run once to gather evidence showing WHERE it breaks
THEN analyze evidence to identify failing component
THEN investigate that specific component
Example (multi-layer system):
# Layer 1: Workflow
echo "=== Secrets available in workflow: ==="
echo "IDENTITY: ${IDENTITY:+SET}${IDENTITY:-UNSET}"
# Layer 2: Build script
echo "=== Env vars in build script: ==="
env | grep IDENTITY || echo "IDENTITY not in environment"
# Layer 3: Signing script
echo "=== Keychain state: ==="
security list-keychains
security find-identity -v
# Layer 4: Actual signing
codesign --sign "$IDENTITY" --verbose=4 "$APP"
This reveals: Which layer fails (secrets → workflow ✓, workflow → build ✗)
Trace Data Flow
WHEN error is deep in call stack:
See root-cause-tracing.md in this directory for the complete backward tracing technique.
Quick version:
- Where does bad value originate?
- What called this with bad value?
- Keep tracing up until you find the source
- Fix at source, not at symptom
Phase 2: Pattern Analysis
Find the pattern before fixing:
Find Working Examples
- Locate similar working code in same codebase
- What works that's similar to what's broken?
Compare Against References
- If implementing pattern, read reference implementation COMPLETELY
- Don't skim - read every line
- Understand the pattern fully before applying
Identify Differences
- What's different between working and broken?
- List every difference, however small
- Don't assume "that can't matter"
Understand Dependencies
- What other components does this need?
- What settings, config, environment?
- What assumptions does it make?
Phase 3: Hypothesis and Testing
Scientific method:
Form Single Hypothesis
- State clearly: "I think X is the root cause because Y"
- Write it down
- Be specific, not vague
Test Minimally
- Make the SMALLEST possible change to test hypothesis
- One variable at a time
- Don't fix multiple things at once
Verify Before Continuing
- Did it work? Yes → Phase 4
- Didn't work? Form NEW hypothesis
- DON'T add more fixes on top
When You Don't Know
- Say "I don't understand X"
- Don't pretend to know
- Ask for help
- Research more
Phase 4: Implementation
Fix the root cause, not the symptom:
Create Failing Test Case
- Simplest possible reproduction
- Automated test if possible
- One-off test script if no framework
- MUST have before fixing
- Use the
test-driven-development skill for writing proper failing tests
Implement Single Fix
- Address the root cause identified
- ONE change at a time
- No "while I'm here" improvements
- No bundled refactoring
Verify Fix
- Test passes now?
- No other tests broken?
- Issue actually resolved?
If Fix Doesn't Work
- STOP
- Count: How many fixes have you tried?
- If < 3: Return to Phase 1, re-analyze with new information
- If ≥ 3: STOP and question the architecture (step 5 below)
- DON'T attempt Fix #4 without architectural discussion
If 3+ Fixes Failed: Question Architecture
Pattern indicating architectural problem:
- Each fix reveals new shared state/coupling/problem in different place
- Fixes require "massive refactoring" to implement
- Each fix creates new symptoms elsewhere
STOP and question fundamentals:
- Is this pattern fundamentally sound?
- Are we "sticking with it through sheer inertia"?
- Should we refactor architecture vs. continue fixing symptoms?
Discuss with the user before attempting more fixes
This is NOT a failed hypothesis - this is a wrong architecture.
Red Flags - STOP and Follow Process
If you catch yourself thinking:
- "Quick fix for now, investigate later"
- "Just try changing X and see if it works"
- "Add multiple changes, run tests"
- "Skip the test, I'll manually verify"
- "It's probably X, let me fix that"
- "I don't fully understand but this might work"
- "Pattern says X but I'll adapt it differently"
- "Here are the main problems: [lists fixes without investigation]"
- Proposing solutions before tracing data flow
- "One more fix attempt" (when already tried 2+)
- Each fix reveals new problem in different place
ALL of these mean: STOP. Return to Phase 1.
If 3+ fixes failed: Question the architecture (see Phase 4.5)
the user's Signals You're Doing It Wrong
Watch for these redirections:
- "Is that not happening?" - You assumed without verifying
- "Will it show us...?" - You should have added evidence gathering
- "Stop guessing" - You're proposing fixes without understanding
- "Ultrathink this" - Question fundamentals, not just symptoms
- "We're stuck?" (frustrated) - Your approach isn't working
When you see these: STOP. Return to Phase 1.
Common Rationalizations
| 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 pattern, don't fix again. |
Quick Reference
| Phase |
Key Activities |
Success Criteria |
| 1. Root Cause |
Read errors, reproduce, check changes, gather evidence |
Understand WHAT and WHY |
| 2. Pattern |
Find working examples, compare |
Identify differences |
| 3. Hypothesis |
Form theory, test minimally |
Confirmed or new hypothesis |
| 4. Implementation |
Create test, fix, verify |
Bug resolved, tests pass |
When Process Reveals "No Root Cause"
If systematic investigation reveals issue is truly environmental, timing-dependent, or external:
- You've completed the process
- Document what you investigated
- Implement appropriate handling (retry, timeout, error message)
- Add monitoring/logging for future investigation
But: 95% of "no root cause" cases are incomplete investigation.
Supporting Techniques
These techniques are part of systematic debugging and available in this directory:
root-cause-tracing.md - Trace bugs backward through call stack to find original trigger
defense-in-depth.md - Add validation at multiple layers after finding root cause
condition-based-waiting.md - Replace arbitrary timeouts with condition polling
Related skills:
- test-driven-development - For creating failing test case (Phase 4, Step 1)
- verification-before-completion - Verify fix worked before claiming success
Real-World Impact
From debugging sessions:
- Systematic approach: 15-30 minutes to fix
- Random fixes approach: 2-3 hours of thrashing
- First-time fix rate: 95% vs 40%
- New bugs introduced: Near zero vs common
Verify
- Root cause is stated in one sentence and is supported by a concrete artifact (stack trace, log line, diff, profiler output)
- The reproducer is minimal and runs locally; the exact command and observed output are captured
- The fix was verified by re-running the reproducer and showing the previously-failing output now passes
- A regression test (or monitoring/alert) was added so the same bug is caught automatically next time
- Adjacent code paths that share the same failure mode were checked, not just the reported symptom
- If the fix touches security, performance, or data integrity, the trade-off is named and quantified
1---2name: systematic-debugging3description: Use when encountering any bug, test failure, or unexpected behavior, before proposing fixes4---56## Triggers78- debug9- debugging10- bug fix11- test failure12- test failing13- root cause14- broken test15- error trace16- stack trace17- unexpected behavior18- flaky test19- build failure20- integration issue21- performance problem22- why is this failing23- fix this bug2425# Systematic Debugging2627## Overview2829Random fixes waste time and create new bugs. Quick patches mask underlying issues.3031**Core principle:** ALWAYS find root cause before attempting fixes. Symptom fixes are failure.3233**Violating the letter of this process is violating the spirit of debugging.**3435## The Iron Law3637```38NO FIXES WITHOUT ROOT CAUSE INVESTIGATION FIRST39```4041If you haven't completed Phase 1, you cannot propose fixes.4243## When to Use4445Use for ANY technical issue:46- Test failures47- Bugs in production48- Unexpected behavior49- Performance problems50- Build failures51- Integration issues5253**Use this ESPECIALLY when:**54- Under time pressure (emergencies make guessing tempting)55- "Just one quick fix" seems obvious56- You've already tried multiple fixes57- Previous fix didn't work58- You don't fully understand the issue5960**Don't skip when:**61- Issue seems simple (simple bugs have root causes too)62- You're in a hurry (rushing guarantees rework)63- Manager wants it fixed NOW (systematic is faster than thrashing)6465## The Four Phases6667You MUST complete each phase before proceeding to the next.6869### Phase 1: Root Cause Investigation7071**BEFORE attempting ANY fix:**72731. **Read Error Messages Carefully**74 - Don't skip past errors or warnings75 - They often contain the exact solution76 - Read stack traces completely77 - Note line numbers, file paths, error codes78792. **Reproduce Consistently**80 - Can you trigger it reliably?81 - What are the exact steps?82 - Does it happen every time?83 - If not reproducible → gather more data, don't guess84853. **Check Recent Changes**86 - What changed that could cause this?87 - Git diff, recent commits88 - New dependencies, config changes89 - Environmental differences90914. **Gather Evidence in Multi-Component Systems**9293 **WHEN system has multiple components (CI → build → signing, API → service → database):**9495 **BEFORE proposing fixes, add diagnostic instrumentation:**96 ```97 For EACH component boundary:98 - Log what data enters component99 - Log what data exits component100 - Verify environment/config propagation101 - Check state at each layer102103 Run once to gather evidence showing WHERE it breaks104 THEN analyze evidence to identify failing component105 THEN investigate that specific component106 ```107108 **Example (multi-layer system):**109 ```bash110 # Layer 1: Workflow111 echo "=== Secrets available in workflow: ==="112 echo "IDENTITY: ${IDENTITY:+SET}${IDENTITY:-UNSET}"113114 # Layer 2: Build script115 echo "=== Env vars in build script: ==="116 env | grep IDENTITY || echo "IDENTITY not in environment"117118 # Layer 3: Signing script119 echo "=== Keychain state: ==="120 security list-keychains121 security find-identity -v122123 # Layer 4: Actual signing124 codesign --sign "$IDENTITY" --verbose=4 "$APP"125 ```126127 **This reveals:** Which layer fails (secrets → workflow ✓, workflow → build ✗)1281295. **Trace Data Flow**130131 **WHEN error is deep in call stack:**132133 See `root-cause-tracing.md` in this directory for the complete backward tracing technique.134135 **Quick version:**136 - Where does bad value originate?137 - What called this with bad value?138 - Keep tracing up until you find the source139 - Fix at source, not at symptom140141### Phase 2: Pattern Analysis142143**Find the pattern before fixing:**1441451. **Find Working Examples**146 - Locate similar working code in same codebase147 - What works that's similar to what's broken?1481492. **Compare Against References**150 - If implementing pattern, read reference implementation COMPLETELY151 - Don't skim - read every line152 - Understand the pattern fully before applying1531543. **Identify Differences**155 - What's different between working and broken?156 - List every difference, however small157 - Don't assume "that can't matter"1581594. **Understand Dependencies**160 - What other components does this need?161 - What settings, config, environment?162 - What assumptions does it make?163164### Phase 3: Hypothesis and Testing165166**Scientific method:**1671681. **Form Single Hypothesis**169 - State clearly: "I think X is the root cause because Y"170 - Write it down171 - Be specific, not vague1721732. **Test Minimally**174 - Make the SMALLEST possible change to test hypothesis175 - One variable at a time176 - Don't fix multiple things at once1771783. **Verify Before Continuing**179 - Did it work? Yes → Phase 4180 - Didn't work? Form NEW hypothesis181 - DON'T add more fixes on top1821834. **When You Don't Know**184 - Say "I don't understand X"185 - Don't pretend to know186 - Ask for help187 - Research more188189### Phase 4: Implementation190191**Fix the root cause, not the symptom:**1921931. **Create Failing Test Case**194 - Simplest possible reproduction195 - Automated test if possible196 - One-off test script if no framework197 - MUST have before fixing198 - Use the `test-driven-development` skill for writing proper failing tests1992002. **Implement Single Fix**201 - Address the root cause identified202 - ONE change at a time203 - No "while I'm here" improvements204 - No bundled refactoring2052063. **Verify Fix**207 - Test passes now?208 - No other tests broken?209 - Issue actually resolved?2102114. **If Fix Doesn't Work**212 - STOP213 - Count: How many fixes have you tried?214 - If < 3: Return to Phase 1, re-analyze with new information215 - **If ≥ 3: STOP and question the architecture (step 5 below)**216 - DON'T attempt Fix #4 without architectural discussion2172185. **If 3+ Fixes Failed: Question Architecture**219220 **Pattern indicating architectural problem:**221 - Each fix reveals new shared state/coupling/problem in different place222 - Fixes require "massive refactoring" to implement223 - Each fix creates new symptoms elsewhere224225 **STOP and question fundamentals:**226 - Is this pattern fundamentally sound?227 - Are we "sticking with it through sheer inertia"?228 - Should we refactor architecture vs. continue fixing symptoms?229230 **Discuss with the user before attempting more fixes**231232 This is NOT a failed hypothesis - this is a wrong architecture.233234## Red Flags - STOP and Follow Process235236If you catch yourself thinking:237- "Quick fix for now, investigate later"238- "Just try changing X and see if it works"239- "Add multiple changes, run tests"240- "Skip the test, I'll manually verify"241- "It's probably X, let me fix that"242- "I don't fully understand but this might work"243- "Pattern says X but I'll adapt it differently"244- "Here are the main problems: [lists fixes without investigation]"245- Proposing solutions before tracing data flow246- **"One more fix attempt" (when already tried 2+)**247- **Each fix reveals new problem in different place**248249**ALL of these mean: STOP. Return to Phase 1.**250251**If 3+ fixes failed:** Question the architecture (see Phase 4.5)252253## the user's Signals You're Doing It Wrong254255**Watch for these redirections:**256- "Is that not happening?" - You assumed without verifying257- "Will it show us...?" - You should have added evidence gathering258- "Stop guessing" - You're proposing fixes without understanding259- "Ultrathink this" - Question fundamentals, not just symptoms260- "We're stuck?" (frustrated) - Your approach isn't working261262**When you see these:** STOP. Return to Phase 1.263264## Common Rationalizations265266| Excuse | Reality |267|--------|---------|268| "Issue is simple, don't need process" | Simple issues have root causes too. Process is fast for simple bugs. |269| "Emergency, no time for process" | Systematic debugging is FASTER than guess-and-check thrashing. |270| "Just try this first, then investigate" | First fix sets the pattern. Do it right from the start. |271| "I'll write test after confirming fix works" | Untested fixes don't stick. Test first proves it. |272| "Multiple fixes at once saves time" | Can't isolate what worked. Causes new bugs. |273| "Reference too long, I'll adapt the pattern" | Partial understanding guarantees bugs. Read it completely. |274| "I see the problem, let me fix it" | Seeing symptoms ≠ understanding root cause. |275| "One more fix attempt" (after 2+ failures) | 3+ failures = architectural problem. Question pattern, don't fix again. |276277## Quick Reference278279| Phase | Key Activities | Success Criteria |280|-------|---------------|------------------|281| **1. Root Cause** | Read errors, reproduce, check changes, gather evidence | Understand WHAT and WHY |282| **2. Pattern** | Find working examples, compare | Identify differences |283| **3. Hypothesis** | Form theory, test minimally | Confirmed or new hypothesis |284| **4. Implementation** | Create test, fix, verify | Bug resolved, tests pass |285286## When Process Reveals "No Root Cause"287288If systematic investigation reveals issue is truly environmental, timing-dependent, or external:2892901. You've completed the process2912. Document what you investigated2923. Implement appropriate handling (retry, timeout, error message)2934. Add monitoring/logging for future investigation294295**But:** 95% of "no root cause" cases are incomplete investigation.296297## Supporting Techniques298299These techniques are part of systematic debugging and available in this directory:300301- **`root-cause-tracing.md`** - Trace bugs backward through call stack to find original trigger302- **`defense-in-depth.md`** - Add validation at multiple layers after finding root cause303- **`condition-based-waiting.md`** - Replace arbitrary timeouts with condition polling304305**Related skills:**306- **test-driven-development** - For creating failing test case (Phase 4, Step 1)307- **verification-before-completion** - Verify fix worked before claiming success308309## Real-World Impact310311From debugging sessions:312- Systematic approach: 15-30 minutes to fix313- Random fixes approach: 2-3 hours of thrashing314- First-time fix rate: 95% vs 40%315- New bugs introduced: Near zero vs common316317## Verify318319- Root cause is stated in one sentence and is supported by a concrete artifact (stack trace, log line, diff, profiler output)320- The reproducer is minimal and runs locally; the exact command and observed output are captured321- The fix was verified by re-running the reproducer and showing the previously-failing output now passes322- A regression test (or monitoring/alert) was added so the same bug is caught automatically next time323- Adjacent code paths that share the same failure mode were checked, not just the reported symptom324- If the fix touches security, performance, or data integrity, the trade-off is named and quantified