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SKILL verified MIT Self-run

Repo Visuals Retro

skill-livlign-claude-skills-repo-visuals-retro · by livlign

Retrospective meta-skill for the `repo-visuals` skill. Reads accumulated evaluation logs from past runs, spots patterns (recurring low-score criteria, repeated iteration failures, unsatisfied requests), consults other expert skills (skill-creator, frontend-design, etc.) where relevant, and proposes concrete edits to `repo-visuals/SKILL.md` as a reviewable diff. Runs on-demand, not per run.

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Install

$ agentstack add skill-livlign-claude-skills-repo-visuals-retro

✓ 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.

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About

repo-visuals-retro

The repo-visuals skill scores every run on five criteria (see repo-visuals/SKILL.md §6). This meta-skill turns that accumulated evidence into skill improvements.

When to invoke

  • You have ≥ 5 runs logged in ./evaluations/runs/ in the user's working directory (before that, the sample is noise).
  • Something feels off across multiple runs and you want a structured look.
  • A major change to repo-visuals is planned and you want the evidence base first.

Do not run this every session. Retros are more valuable with accumulated samples.

Inputs

  • The repo-visuals skill's SKILL.md — the current skill definition (sibling skill in the same plugin)
  • ./evaluations/index.md in the user's working directory — curated aggregate from previous retros
  • ./evaluations/runs/*.md in the user's working directory — all per-run raw evaluations since the last retro
  • Available expert skills in the environment (detected, not assumed)

Workflow

1. Read & tabulate

Read all inputs. Build a small table:

  • Average score per criterion, overall and by repo-type bucket (CLI, library, web-app, etc. — infer from scan metadata in each run)
  • Variance per criterion (high variance = the skill is inconsistent on that axis)
  • Free-text feedback clustered by theme

2. Identify patterns

Name each pattern concretely:

  • "Hero moment delivery averaged 2.6 / 5 across the 4 CLI-tool runs but 4.2 / 5 across library runs"
  • "Technical polish dropped whenever the stage was < 400 px tall — type legibility likely"
  • "3 runs had identical user feedback: 'loop seam is jarring'"

3. Consult expert skills

For each pattern, consult the relevant expert skill(s) if available in the environment. Examples:

  • Visual / design critiquefrontend-design skill. Feed it the final HTML + screenshots from low-scoring runs; ask for specific design-rule violations.
  • Skill structure / prompt designskill-creator skill. Ask whether the skill's Phase N language is ambiguous or missing a step.
  • Evaluation methodology → any evaluate-plugins style skill. Ask whether the 5-criterion scorecard is well-calibrated.
  • Domain-specific knowledge → e.g. an ast-graph / codebase-compare skill if patterns suggest weaknesses in the scan phase.

Detect which skills are actually available — don't reference non-existent ones.

4. Propose edits

Write a diff-style proposal: for each pattern, which section of the repo-visuals skill's SKILL.md changes and why. Example:

Pattern: Hero moment delivery weak on CLI tools (2.6/5 avg over 4 runs).
Hypothesis: §1.4a probes don't surface CLI-specific hero moments
            (install speed, clear command output, shell ergonomics).
Proposed edit to §1.4a: add a CLI-tool branch to the probing list with
            3 tool-specific prompts.

Show the proposed diff. Wait for user approval before applying.

5. Apply & update aggregate

On user approval:

  • Edit the repo-visuals skill's SKILL.md with the approved changes
  • Append a retro summary to ./evaluations/index.md (date, patterns identified, edits applied)
  • Move the raw run files that informed this retro into ./evaluations/runs/processed/ so the next retro only sees new samples

Outputs

  • Updated repo-visuals skill SKILL.md
  • Updated ./evaluations/index.md with retro summary
  • Moved processed run files

What this skill does NOT do

  • Does not run repo-visuals itself
  • Does not auto-apply edits without user approval
  • Does not invent criteria — it only improves the skill against its existing scorecard

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.

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Versions

  • v0.1.0 Imported from the upstream source.