Review Pr (Grade A) logo

Review Pr (Grade A)安全测试的数据-AI技能,为Claude AI。评级 A。通过知识图谱评估 PR 或分支差异,对结构上下文有全面了解。输出结构化评论,提供爆炸半径分析

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Daniel Nikulshyn审阅者 Daniel Nikulshyn·更新 2026年7月

概览

Review Pr 是一个安全测试的数据-AI技能,为Claude AI评级 A。它使用知识图谱评估 PR 或分支差异,对结构上下文有全面了解,输出结构化评论,包括爆炸半径分析。该工具旨在提供全面代码评审,识别高风险区域,检查测试覆盖率并建议改进。它与多种工具集成以更新图、获取评论上下文和分析影响。输出包含摘要、风险评估、文件逐一评审和建议。

主要功能

  • PR 或分支差异评论
  • 知识图谱集成
  • 结构化评论输出
  • 爆炸半径分析
  • 测试覆盖性验证

价格

模型
Free
评分
暂无评价

使用场景

代码评审

对pull请求或分支差异进行全面代码评审

风险评估

识别高风险区域并评估PR或分支差异的整体风险

优点 & 缺点

优点

  • 全面代码评审
  • 爆炸半径分析
  • 测试覆盖性验证

缺点

  • 仅限Claude AI
  • 需要 Git 和知识图谱设置

评测

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问答

How does it handle monorepos, git worktrees, and multiple repos?

Monorepos: one graph per repository root is created automatically; only tracked files are indexed, and a .code-review-graphignore file can exclude additional paths. Git worktrees: each worktree is detected as a separate root and gets its own graph; sharing a single database across worktrees at different commits is not supported. Multiple repos: a lightweight registry (stored at ~/.code-review-graph/registry.json) lets MCP clients search across registered projects, and a daemon can watch several repos to keep their graphs updated. Use --repo, --data-dir, or the CRGDATADIR environment variable to customize locations.

Asked by Jana Krejčí · Dec 28, 2025

How big a codebase justifies it?

Below a few hundred files the benefit is marginal because an agent can often hold the whole repo in context. Between a few hundred and a few thousand files is the sweet spot: benchmarks on repos ranging from 60 to ~1,100 files show 38×–528× token reductions on whole‑corpus questions. Multi‑thousand‑file repos and monorepos provide the strongest case, as agents cannot read the entire corpus per query and incremental graph updates keep the index fresh with minimal cost. The frequency of multi‑file queries also influences the payoff.

Asked by Wolfgang Krause · Dec 8, 2025

How do I verify it is working?

1. Ensure the graph file exists and contains nodes/edges; a zero count means the build didn’t run. 2. Run a change and observe the risk summary and Token Savings panel; add --verify to cross‑check token estimates with the cl100kbase tokenizer. 3. In Claude Code, run /mcp and confirm the code‑review‑graph server is connected and its tools are listed. Then ask a structural question (e.g., "what calls parsefile?") and verify the assistant uses query_graph instead of grepping. If any step fails, consult TROUBLESHOOTING.md.

Asked by Elena Rossi · Nov 18, 2025

Does it phone home?

No. There is zero telemetry. The graph is stored locally in a SQLite file inside your repository, and all core operations run entirely on your machine. The only network activity is optional: installing the embeddings extra will download a sentence‑transformers model from HuggingFace, and cloud embedding providers (OpenAI, Google Gemini, MiniMax) will receive only the function signatures you explicitly choose to embed, after you acknowledge the egress warning. Otherwise, your code never leaves the machine.

Asked by Lindiwe Mahlangu · Nov 16, 2025

When should I not use it?

The README lists several cases: very small repos (a few hundred files) where the overhead of building a graph outweighs the benefits; trivial single‑file changes where the graph response adds more tokens than the raw diff; one‑off questions on a repo you won’t revisit; and flow detection in languages where CRG’s entry‑point detection is less reliable (e.g., JavaScript and Go currently have low recall). In these scenarios, simple agentic search or grepping is usually sufficient.

Asked by Mia Andersen · Nov 12, 2025

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