Contribute a session learning back to the upstream tonone repo. Scans the conversation, extracts the single most reusable insight, asks one question, creates the PR. Use when asked to "contribute a learning", "share a discovery", "improve tonone", or "submit a fix upstream".
Scanned 9/2/2026
Install to Claude Code
npx -y skills add jeremylongshore/tons-of-skills-marketplace --skill pave-contribute --agent claude-codeInstalls into .claude/skills of the current project.
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---
name: pave-contribute
description: Contribute a session learning back to the upstream tonone repo. Scans the conversation, extracts the single most reusable insight, asks one question, creates the PR. Use when asked to "contribute a learning", "share a discovery", "improve tonone", or "submit a fix upstream".
allowed-tools: Read, Write, Edit, Bash, AskUserQuestion
version: 0.9.9
author: tonone-ai <hello@tonone.ai>
license: MIT
---
# Contribute to tonone
You are Pave. Scan the session. Find the learning. One question. PR. Done.
---
## Step 1 — Extract the learning (no user input needed)
Read the current conversation and find the single most reusable insight. Look for:
- A **routing gap**: user's request didn't match any skill, they worked around it
- **Agent corrections**: user corrected the same agent 2+ times for the same pattern
- A **missing skill**: user built something that should exist as a `/skill-name`
- A **prompt improvement**: agent's default behavior needed explicit correction
Score candidates by reusability (would this help ANY tonone user, not just this project?).
Pick the highest-scoring one. If nothing qualifies, print:
```
╭─ PAVE ── contribute ─────────────────────────────╮
No reusable learnings found in this session.
╰──────────────────────────────────────────────────╯
```
...and exit.
---
## Step 2 — Map to a file change
Determine exactly what to change in the tonone repo:
| Learning type | File to change |
| ------------------ | ---------------------------------------------- |
| routing gap | `CLAUDE.md` — add routing rule |
| agent correction | `agents/<name>.md` — patch system prompt |
| missing skill | `skills/<name>/SKILL.md` — new skill stub |
| prompt improvement | `agents/<name>.md` or `skills/<name>/SKILL.md` |
Draft the exact diff in memory. Keep it minimal — one logical change.
---
## Step 3 — Sanitize (automatic, no asking)
Strip all user-specific context from the proposed change:
- Project/company/domain names → `<project>` / `<company>`
- Personal file paths → `<path>`
- Any credentials or tokens → `<redacted>`
---
## Step 4 — One question
Use AskUserQuestion with exactly this format:
> **Learning found:** `<one-line description of the improvement>`
> **Change:** `<file>` — `<what changes, in 10 words or less>`
>
> Contribute this to tonone?
Options: **Yes** / **No**
If No: exit silently.
---
## Step 5 — Create the PR (no further questions)
```bash
TONONE_TMP=$(mktemp -d)
git clone https://github.com/tonone-ai/tonone "$TONONE_TMP/tonone" --depth=1 --quiet
cd "$TONONE_TMP/tonone"
gh repo fork --remote-name=fork --clone=false 2>/dev/null || true
GH_USER=$(gh api user --jq .login)
git remote add fork "https://github.com/${GH_USER}/tonone.git" 2>/dev/null || \
git remote set-url fork "https://github.com/${GH_USER}/tonone.git"
BRANCH="contribute/$(echo '<slug>' | tr ' ' '-')-$(date +%Y%m%d)"
git checkout -b "$BRANCH"
```
Apply the diff to the appropriate file. Then:
```bash
git add -A
git commit -m "contribute: <one-line description>"
git push fork "$BRANCH" --quiet
PR_URL=$(gh pr create \
--repo tonone-ai/tonone \
--head "${GH_USER}:${BRANCH}" \
--title "<title>" \
--body "## Learning
<description>
## Type
\`<routing | agent-patch | skill-new | skill-improve>\`
---
*Via \`/contribute\` — auto-extracted from a tonone session*" \
--json url --jq .url)
rm -rf "$TONONE_TMP"
```
---
## Step 6 — Receipt
```
╭─ PAVE ── contribute ─────────────────────────────╮
PR open: <PR_URL>
╰──────────────────────────────────────────────────╯
```
---
## Error handling
- `gh` not authenticated → print "Run `gh auth login` first." Exit.
- Nothing reusable found → print "No reusable learnings found." Exit.
- Push fails → print error, `rm -rf "$TONONE_TMP"`, exit.
Follow the output format defined in docs/output-kit.md — 40-line CLI max, box-drawing skeleton, unified severity indicators, compressed prose.
If output exceeds 40 lines, delegate to /atlas-report.
Is this your skill, or is something wrong with this listing? Request removal or report an issue. Author removals are honored within 72 hours.
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