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clickhouse-github-forensicsclickhouse GitHub forensics 开发

Agent Skill

用于围绕 GitHub 仓库、Issue、Pull Request、分支、提交和代码协作流程提供辅助能力。它适合让 Agent 查询项目状态、整理变更、辅助创建或检查协作事项,并把仓库中的信息转成可执行的下一步。使用时需要区分只读查询和写入操作;涉及创建 PR、修改 Issue、推送分支或访问私有仓库时,应确认 token 权限、目标仓库范围和用户授权。

总安装

4,992

周安装

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下载量

1,664
OpenClaw

安装说明

本站只整理中文说明和来源信息,不托管安装包,也不代用户安装。

GitHub

来源数

2

许可证

MIT-0

最后核验

2026-05-01

来源状态

来源可访问

安装方式

通过对话安装

复制提示词发给支持本地命令或 Skills 的 AI 助手,先确认命令和权限,再让它执行。

请帮我安装这个 Agent Skill:clickhouse-github-forensics(clickhouse GitHub forensics 开发)
来源仓库:https://github.com/1an0rmus/clickhouse-github-forensics
安装命令:
openclaw skills install clickhouse-github-forensics
安装前请先检查当前环境是否支持对应 CLI,并向我确认将要执行的命令、安装目录、联网范围和文件读写权限;确认后再执行。

命令行安装

复制命令到本机终端执行。该命令会通过 OpenClaw 从第三方来源获取 Skill;本站只展示命令,不托管安装包,也不自动执行。

ClawHubOpenClaw
openclaw skills install clickhouse-github-forensics

简介

clickhouse-github-forensics 通过 ClickHouse 查询 GitHub 事件数据进行供应链安全分析。

  • 适用于攻击溯源、参与者行为异常检测和开源组件审计。
  • 通过 clawhub 安装并使用 openclaw skills install clickhouse-github-forensics 命令部署。
  • 访问私有仓库需有效 token 且仅限授权范围使用。
  • 适用宿主包括 OpenClaw,接入前应确认版本、权限和运行环境要求。

SKILL.md

name
clickhouse-github-forensics
description
Query GitHub event data via ClickHouse for supply chain investigations, actor profiling, and anomaly detection. Use when investigating GitHub-based attacks, tracking repository activity, analyzing actor behavior patterns, detecting tag/release tampering, or reconstructing incident timelines from public GitHub data. Triggers on GitHub supply chain attacks, repo compromise investigations, actor attribution, tag poisoning, or "query github events".

ClickHouse GitHub Forensics

Query 10+ billion GitHub events for security investigations.

Author: Rufio @ Permiso Security Use Case: Built during the Trivy supply chain compromise investigation (March 2026)

Quick Start

curl -s "https://play.clickhouse.com/?user=play" \
  --data "SELECT ... FROM github_events WHERE ... FORMAT PrettyCompact"
  • Endpoint: https://play.clickhouse.com/?user=play
  • Table: github_events
  • Auth: None required (public read-only)
  • Freshness: Near real-time (~minutes behind)
  • Volume: 10+ billion events

Key Columns

ColumnTypeUse
created_atDateTimeEvent timestamp
event_typeEnumPushEvent, CreateEvent, DeleteEvent, ReleaseEvent, etc.
actor_loginStringGitHub username
repo_nameStringowner/repo format
refStringBranch/tag name (e.g., refs/heads/main, 0.33.0)
ref_typeEnumbranch, tag, repository, none
actionEnumpublished, created, opened, closed, etc.

For full schema (29 columns): see references/schema.md

Common Investigation Patterns

1. Actor Timeline (Who did what, when?)

SELECT created_at, event_type, repo_name, ref, action
FROM github_events 
WHERE actor_login = 'TARGET_ACCOUNT'
AND created_at >= '2026-03-01'
ORDER BY created_at

2. Repo Activity Window (What happened during incident?)

SELECT created_at, event_type, actor_login, ref, ref_type, action
FROM github_events 
WHERE repo_name = 'owner/repo'
AND created_at >= 'START_TIME'
AND created_at <= 'END_TIME'
ORDER BY created_at

3. Anomaly Detection (First-time repo access)

SELECT repo_name,
       countIf(created_at < 'ATTACK_DATE') as before,
       countIf(created_at >= 'ATTACK_DATE') as during
FROM github_events 
WHERE actor_login = 'SUSPECT_ACCOUNT'
AND created_at >= 'LOOKBACK_START'
GROUP BY repo_name
ORDER BY during DESC

4. Tag/Release Tampering

SELECT created_at, event_type, actor_login, ref, ref_type
FROM github_events 
WHERE repo_name = 'owner/repo'
AND event_type IN ('CreateEvent', 'DeleteEvent', 'ReleaseEvent')
AND ref_type = 'tag'
ORDER BY created_at

5. Actor Profile (Is this account legitimate?)

SELECT toStartOfMonth(created_at) as month,
       count() as events,
       uniqExact(repo_name) as unique_repos
FROM github_events 
WHERE actor_login = 'TARGET_ACCOUNT'
GROUP BY month
ORDER BY month

6. Org-Wide Activity (All repos in an org)

SELECT created_at, event_type, actor_login, repo_name, ref
FROM github_events 
WHERE repo_name LIKE 'orgname/%'
AND created_at >= 'START_TIME'
ORDER BY created_at

7. New Accounts During Incident (Potential attacker alts)

SELECT actor_login, min(created_at) as first_ever, count() as events
FROM github_events 
WHERE repo_name LIKE 'orgname/%'
GROUP BY actor_login
HAVING first_ever >= 'INCIDENT_START' AND first_ever <= 'INCIDENT_END'
ORDER BY first_ever

8. Hourly Breakdown (Attack timeline)

SELECT toStartOfHour(created_at) as hour,
       actor_login,
       count() as events,
       groupArray(distinct repo_name) as repos,
       groupArray(distinct event_type) as types
FROM github_events 
WHERE repo_name LIKE 'orgname/%'
AND created_at >= 'START_TIME'
GROUP BY hour, actor_login
ORDER BY hour

Event Types Reference

EventSignificance
PushEventCode pushed to branch
CreateEventBranch/tag/repo created
DeleteEventBranch/tag deleted
ReleaseEventRelease published/edited
PullRequestEventPR opened/closed/merged
IssueCommentEventComment on issue
ForkEventRepo forked
WatchEventRepo starred

Tips

  • Output formats: FORMAT PrettyCompact for tables, FORMAT TabSeparated for parsing
  • macOS curl: Use --data not -d for multi-line queries
  • Timestamps: Use UTC, format YYYY-MM-DD HH:MM:SS
  • No payload JSON: Raw event payloads aren't available; use structured columns
  • Bot accounts: Filter with actor_login NOT IN ('github-actions[bot]', 'dependabot[bot]')

Security & Privacy

  • Uses ClickHouse's public playground — all queries sent to play.clickhouse.com
  • Data queried is GitHub's public event stream only
  • No private repo data, credentials, or sensitive information is accessible
  • Use responsibly: GitHub ToS prohibits scraping for spam or harassment

适合场景

01

OpenClaw 用户查找和安装 Skill 时

02

用户想查找某类 Agent Skill 时

03

需要根据任务场景推荐可安装能力包时

04

需要对比不同来源的安装命令和来源信息时

能力概览

能力 1

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能力 2

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能力 3

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能力 4

补充不同宿主或平台的使用分布数据

能力 5

展示第三方安全扫描或审计结果

安装后应在对应宿主中按原始 README 的触发条件使用;具体调用方式请以来源页面和 README 为准。

平台分布

OpenClaw

70.06%
按下载量换算1,166

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权限和风险

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安装前确认

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