skills-experimental/github-deep-research/SKILL.md
Conduct multi-round deep research on any GitHub Repo. Use when users request comprehensive analysis, timeline reconstruction, competitive analysis, or in-depth investigation of GitHub. Produces structured markdown reports with executive summaries, chronological timelines, metrics analysis, and Mermaid diagrams. Triggers on Github repository URL or open source projects.
npx skillsauth add bianhaifeng789-hue/openclaw-config github-deep-researchInstall this skill globally with one command. Works with Claude Code, Cursor, and Windsurf.
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Multi-round research combining GitHub API, web_search, web_fetch to produce comprehensive markdown reports.
Broad to Narrow: Start with GitHub API, then general queries, refine based on findings.
Round 1: GitHub API
Round 2: "{topic} overview"
Round 3: "{topic} architecture", "{topic} vs alternatives"
Round 4: "{topic} issues", "{topic} roadmap", "site:github.com {topic}"
Source Prioritization:
Round 1 - GitHub API
Directly execute scripts/github_api.py without read_file():
python /path/to/skill/scripts/github_api.py <owner> <repo> summary
python /path/to/skill/scripts/github_api.py <owner> <repo> readme
python /path/to/skill/scripts/github_api.py <owner> <repo> tree
Available commands (the last argument of github_api.py):
Round 2 - Discovery (3-5 web_search)
Round 3 - Deep Investigation (5-10 web_search + web_fetch)
Round 4 - Deep Dive
Follow template in assets/report_template.md:
Include diagrams where helpful:
Timeline (Gantt):
gantt
title Project Timeline
dateFormat YYYY-MM-DD
section Phase 1
Development :2025-01-01, 2025-03-01
section Phase 2
Launch :2025-03-01, 2025-04-01
Architecture (Flowchart):
flowchart TD
A[User] --> B[Coordinator]
B --> C[Planner]
C --> D[Research Team]
D --> E[Reporter]
Comparison (Pie/Bar):
pie title Market Share
"Project A" : 45
"Project B" : 30
"Others" : 25
Assign confidence based on source quality:
| Confidence | Criteria | |------------|----------| | High (90%+) | Official docs, GitHub data, multiple corroborating sources | | Medium (70-89%) | Single reliable source, recent articles | | Low (50-69%) | Social media, unverified claims, outdated info |
Save report as: research_{topic}_{YYYYMMDD}.md
[citation:Title](URL) format immediately after each claim from external sourcesGood - With inline citations:
The project gained 10,000 stars within 3 months of launch [citation:GitHub Stats](https://github.com/owner/repo).
The architecture uses LangGraph for workflow orchestration [citation:LangGraph Docs](https://langchain.com/langgraph).
Bad - Without citations:
The project gained 10,000 stars within 3 months of launch.
The architecture uses LangGraph for workflow orchestration.
business
IAA 日报飞书输出能力。 支持把固定 CSV 模板一键转换成: - 中文运营结论 - 飞书卡片 JSON - 飞书发送载荷 Use when: - 需要把 IAA 日报直接发到飞书 - 需要从 CSV 一键生成运营日报
data-ai
IAA日报分析模型 功能: - 渠道日报自动分析 - 小时级+日级ROI联动判断 - 按地区输出加量/降量/停投建议 - 按产品类型输出阈值 - 自动识别利润区/观察区/止损区 Use when: - 分析每天投放数据 - 生成运营日报结论 - 判断是否加量/降量/停投 - 对比美加澳/日韩表现 Keywords: - 日报模型, 投放日报, 加量, 降量, 停投, ROI日报, 分地区分析
data-ai
IAA固定日报分析模板 功能: - 固定字段模板(可直接贴每天数据) - 自动输出总盘结论 - 自动输出美加澳/日韩结论 - 自动给出加量/降量/停投建议 - 适配文件修复/清理两类产品 Use when: - 需要固定日报格式 - 每天复盘渠道表现 - 给运营团队出统一结论 Keywords: - 固定模板, 日报模板, ROI模板, IAA日报, 运营模板
development
# HyperlinkPool Pattern Skill HyperlinkPool Pattern - HyperlinkPool class + strings array + stringMap + Index 0 no hyperlink + intern(hyperlink) + get(id) + undefined handling + 5-minute reset + OSC8 hyperlink interning。 ## 功能概述 从Claude Code的ink/screen.ts提取的HyperlinkPool模式,用于OpenClaw的OSC8超链接池管理。 ## 核心机制 ### HyperlinkPool Class ```typescript export class HyperlinkPool { private strings: string[] = [''] // Index 0 = no hyperlink private stringMap = new Map<string, number>() // strings