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SKILL verified MIT Self-run

Diagnose

skill-avibebuilder-claude-prime-diagnose · by avibebuilder

Investigate unexpected behavior and mysterious bugs. Use when the cause of a problem is unknown and the user needs to understand WHY something is happening — symptoms like: sudden unexplained changes in metrics or behavior, works locally but not in staging/production, inconsistent or intermittent failures, correct code producing wrong results, operations succeeding but having no effect, environme…

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Install

$ agentstack add skill-avibebuilder-claude-prime-diagnose

✓ scanned · ✓ verified, works with Claude Code, Cursor, and more.

Security review

✓ Passed

No issues found. Passed automated security review. · v0.1.0 How review works →

  • Prompt-injection patterns
  • Secret / credential exfiltration
  • Dangerous shell & filesystem operations
  • Untrusted network calls
  • Known-malicious package signatures

What it can access

  • Network access No
  • Filesystem access No
  • Shell / process execution No
  • Environment & secrets No
  • Dynamic code execution No

From automated source analysis of v0.1.0. “Used” means the capability is present in the source — more access means more to trust, not that it’s unsafe.

View the full security report →

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Reliability & compatibility

Security review passed
0 installs to date
no reviews yet
4mo ago

Declared compatibility

Claude CodeClaude Desktop

Compatibility is declared by the source manifest. End-to-end runtime verification is coming, see below.

Preview Execution monitoring

We're building live execution health for every listing: tool-call success rate, median latency, uptime, and last-checked timestamps, measured, not self-reported. It isn't live yet, so we don't show numbers we can't stand behind.

How agent discovery & health will work →
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About

Think harder.

Process

Check conversation context and skip completed steps.

1. Understand the symptom

  • Read the bug report, errors, logs, and surrounding code carefully
  • Clarify reproduction steps, expected behavior, and environment when they are unclear
  • Separate confirmed facts from working assumptions. List them explicitly:
  • Fact (confirmed): the server returns 200
  • Assumption (unconfirmed): the client receives the full HTML body

Misidentifying an assumption as a fact is the most common source of wasted investigation.

2. Build hypotheses

  • Form 2-4 plausible root-cause hypotheses that are mechanistically distinct — different failure layers (e.g., server render vs. client hydration vs. network layer), not variations of the same idea
  • Rank them by likelihood
  • For each hypothesis, state both sides:
  • Confirm if: [what observation would prove this is the cause]
  • Eliminate if: [what observation would rule this out]

A hypothesis you can't falsify in both directions is too vague to test.

3. Choose the lightest evidence method

Start with the cheapest source of truth that can kill hypotheses:

  • existing logs, traces, stack traces, metrics, and error output
  • static code inspection around the suspected path
  • config, environment, deploy, cache, queue, and permissions state that could explain the symptom
  • targeted reproduction in the relevant environment

Only add new instrumentation when existing evidence is insufficient.

  • If you need runtime probes, read diagnose/references/runtime-debugging.md
  • Use #region agent log / #endregion markers for any instrumentation you add
  • Tag each log point with the relevant hypothesisId
  • Log only the minimum fields needed to discriminate between hypotheses; never log secrets, tokens, passwords, cookies, or full sensitive payloads
  • If runtime probes require starting the local debug server, ask the user before launching it
  • For browser/UI bugs, combine with the agent-browser skill when reproduction or inspection needs it

4. Gather evidence and iterate

  • Use existing logs, traces, failing tests, or artifacts before asking for a fresh reproduction
  • When reproduction is needed, ask the user to trigger the bug — tie each request to the hypothesis it tests
  • Correlate each finding with the hypothesis it supports or eliminates; narrow based on evidence, not confidence
  • If ambiguity remains, refine hypotheses and add narrower probes — but stop and report when another round is unlikely to produce new discriminating evidence

5. Report the diagnosis

Output structured diagnosis:

## Diagnosis: [Issue Title]

### Symptoms
- [What was observed]

### Evidence
- [Finding] — `file:line` or runtime source — hypothesis X
- ...

### Root Cause
[Confirmed or most likely cause, with evidence]

### Hypotheses Tested
| # | Hypothesis | Confirm if | Eliminate if | Result |
|---|-----------|-----------|-------------|--------|
| A | ... | [what observation would prove this] | [what observation would rule this out] | Confirmed/Eliminated/Inconclusive |

### Recommended Next Steps
- [What to do next — usually hand off to `/fix` with this diagnosis]

### Active Instrumentation
- [List files with `#region agent log` blocks still in place, or `None`]

Constraints

  • NO fixing — investigation and diagnosis only. "Recommended Next Steps" hands off to /fix with the diagnosis; it does not prescribe specific parameter values, code snippets, or step-by-step implementation instructions.
  • Evidence over assumptions — if the code looks wrong but runtime evidence says otherwise, trust the runtime
  • If you add #region agent log blocks, leave them in place for /fix to verify the repair and call them out in the final report

Bug

$ARGUMENTS

Source & license

This open-source skill is cataloged on AgentStack and links to its original source — we do not rehost the code.

Install and usage instructions live in the source repository linked above.

Reviews

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Versions

  • v0.1.0 Imported from the upstream source.