cross-review-project
关于
This skill enables two Claude Code instances to conduct structured, reciprocal code reviews via a dedicated MCP broker. It enforces review quality through QSG scaling laws, mandating minimum evidence thresholds and phase-gated dialogue progression. Use it for automated, evidence-backed cross-project analysis between two codebases.
快速安装
Claude Code
推荐npx skills add pjt222/agent-almanac -a claude-code/plugin add https://github.com/pjt222/agent-almanacgit clone https://github.com/pjt222/agent-almanac.git ~/.claude/skills/cross-review-project在 Claude Code 中复制并粘贴此命令以安装该技能
技能文档
Cross-Review Project
Two Claude Code instances review each other's projects through structured artifact exchange via the cross-review-mcp broker. The broker enforces Quantized Simplex Gossip (QSG) scaling laws — review bundles must contain at least 5 findings to stay in the selection regime (Γ_h ≈ 1.67), preventing shallow consensus from passing as agreement.
When to Use
- Two projects share architectural concerns and could learn from each other
- You want independent code review that goes beyond what a single reviewer sees
- Cross-pollination is the goal: finding patterns in one project that are missing in the other
- You need structured, evidence-backed review with accept/reject/discuss verdicts
Inputs
- Required: Two project paths accessible to two Claude Code instances
- Required:
cross-review-mcpbroker running and configured as an MCP server in both instances - Optional: Focus areas — specific directories, patterns, or concerns to prioritize
- Optional: Agent IDs — identifiers for each instance (default: project directory name)
Procedure
Step 1: Verify Prerequisites
Confirm the broker is running and both instances can reach it.
- Check the broker is configured as an MCP server:
claude mcp list | grep cross-review - Call
get_statusto verify the broker is responsive and no stale agents are registered - Read the protocol resource at
cross-review://protocol— this is a markdown document describing the review dimensions and QSG constraints
Got: The broker responds to get_status with an empty agent list. The protocol resource is readable as markdown.
If fail: If the broker is not configured, add it: claude mcp add cross-review-mcp -- npx cross-review-mcp. If stale agents exist from a previous session, call deregister for each before proceeding.
Step 2: Register
Register this agent with the broker.
- Call
registerwith:agentId: a short, unique identifier (e.g., project directory name)project: the project namecapabilities:["review", "suggest"]
- Verify registration by calling
get_status— your agent should appear with phase"registered" - Wait for the peer agent to register: call
wait_for_phasewith the peer's agent ID and phase"registered"
Got: Both agents registered with the broker. get_status shows 2 agents at phase "registered".
If fail: If register fails with "already registered", the agent ID is taken from a previous session. Call deregister first, then re-register.
Step 3: Briefing Phase
Read your own codebase and send a structured briefing to the peer.
- Read systematically:
- Entry points (main files, index, CLI commands)
- Dependency graph (package.json, DESCRIPTION, go.mod)
- Architectural patterns (directory structure, module boundaries)
- Known issues (TODO comments, open issues, tech debt)
- Test coverage (test directories, CI configuration)
- Compose a
Briefingartifact — a structured summary the peer can use to navigate your codebase efficiently - Call
send_taskwith:from: your agent IDto: peer agent IDtype:"briefing"payload: JSON-encoded briefing
- Call
signal_phasewith phase"briefing"
Got: Briefing sent and phase signaled. The broker enforces that you must send a briefing before advancing to review.
If fail: If send_task rejects the briefing, check that the from field matches your registered agent ID. Self-sends are rejected.
Step 4: Review Phase
Wait for the peer's briefing, then review their code and send findings.
- Call
wait_for_phasewith the peer's ID and phase"briefing" - Call
poll_tasksto retrieve the peer's briefing - Call
ack_taskswith the received task IDs — this is required (peek-then-ack pattern) - Read the peer's actual source code, informed by their briefing
- Produce findings across 6 categories:
pattern_transfer— a pattern in your project that the peer could adoptmissing_practice— a practice the peer lacks (testing, validation, error handling)inconsistency— internal contradiction within the peer's codebasesimplification— unnecessary complexity that could be reducedbug_risk— potential runtime failure or edge casedocumentation_gap— missing or misleading documentation
- Each finding must include:
id: unique identifier (e.g.,"F-001")category: one of the 6 categories abovetargetFile: path in the peer's projectdescription: what you foundevidence: why this is a valid finding (code references, patterns)sourceAnalog(recommended): the equivalent in your own project that demonstrates the pattern — this is the single mechanism for genuine cross-pollination
- Bundle at least 5 findings (QSG constraint: m ≥ 5 keeps Γ_h ≈ 1.67 in selection regime)
- Call
send_taskwith type"review_bundle"and the JSON-encoded findings array - Call
signal_phasewith phase"review"
Got: Review bundle accepted by the broker. Fewer than 5 findings will be rejected.
If fail: If the bundle is rejected for insufficient findings, review more deeply. The constraint exists to prevent shallow reviews from dominating. If you genuinely cannot find 5 issues, reconsider whether cross-review is the right tool for this project pair.
Step 5: Dialogue Phase
Receive findings about your own project and respond with evidence-backed verdicts.
- Call
wait_for_phasewith the peer's ID and phase"review" - Call
poll_tasksto retrieve findings about your project - Call
ack_taskswith the received task IDs - For each finding, produce a
FindingResponse:findingId: matches the finding's IDverdict:"accept"(valid, will act on it),"reject"(invalid, with counter-evidence), or"discuss"(needs clarification)evidence: why you accept or reject — must be non-emptycounterEvidence(optional): specific code references that contradict the finding
- Send all responses via
send_taskwith type"response" - Call
signal_phasewith phase"dialogue"
Note: the "discuss" verdict is not gated by the protocol — treat it as a flag for manual follow-up, not an automated sub-exchange.
Got: All findings responded to with verdicts. Empty responses are rejected by the broker.
If fail: If you cannot form an opinion on a finding, default to "discuss" with evidence explaining what additional context you need.
Step 6: Synthesis Phase
Produce a synthesis artifact summarizing accepted findings and planned actions.
- Call
wait_for_phasewith the peer's ID and phase"dialogue" - Poll any remaining tasks and acknowledge them
- Compile a
Synthesisartifact:- Accepted findings with planned actions (what you will change and why)
- Rejected findings with reasons (preserves the reasoning for future review)
- Call
send_taskwith type"synthesis"and the JSON-encoded synthesis - Call
signal_phasewith phase"synthesis" - Optionally create GitHub issues for accepted findings
- Call
signal_phasewith phase"complete" - Call
deregisterto clean up
Got: Both agents reach "complete". The broker requires at least 2 registered agents to advance to complete.
If fail: If the peer has already deregistered, you can still complete locally. Compile your synthesis from the findings you received.
Validation
- Both agents registered and reached
"complete"phase - Briefings exchanged before reviews began (phase enforcement)
- Review bundles contained at least 5 findings each
- All findings received a verdict (accept/reject/discuss) with evidence
-
ack_taskscalled after everypoll_tasks - Synthesis produced with accepted findings mapped to actions
- Agents deregistered after completion
Pitfalls
- Fewer than 5 findings: The broker rejects bundles with m < 5. This is not arbitrary — with N=2 agents and 6 categories, m < 5 puts Γ_h at or below the critical boundary where consensus is indistinguishable from noise. Review more deeply; if 5 findings genuinely cannot be found, the projects may not benefit from cross-review.
- Forgetting
ack_tasks: The broker uses peek-then-ack delivery. Tasks remain in queue until acknowledged. Forgetting to ack causes duplicate processing on the next poll. - Forgetting the
fromparameter:send_taskrequires an explicitfromfield matching your agent ID. Self-sends are rejected. - Same-model epistemic correlation: Two Claude instances share training biases. Temporal ordering ensures they don't read each other's output during review, but their priors are correlated. For genuine epistemic independence, use different model families across instances.
- Skipping
sourceAnalog: ThesourceAnalogfield is optional but is the single mechanism for genuine cross-pollination — it shows your implementation of the pattern you're recommending. Always populate it when a source analog exists. - Treating
discussas blocking: Nothing in the protocol gatescompleteon pending discussions being resolved. Treatdiscussverdicts as flags for manual follow-up after the session. - Not reviewing telemetry: The broker logs all events to JSONL. After a session, review the log to validate QSG assumptions — estimate α empirically (
α ≈ 1 - reject_rate) and check per-category accept rates.
Related Skills
scaffold-mcp-server— for building or extending the broker itselfimplement-a2a-server— A2A protocol patterns the broker draws fromreview-codebase— single-agent review (this skill extends it to cross-agent structured exchange)build-consensus— swarm consensus patterns (QSG is the theoretical foundation)configure-mcp-server— configuring the broker as an MCP server in Claude Codeunleash-the-agents— can be used to analyze the broker itself (battle-tested: 40 agents, 10 hypothesis families)
GitHub 仓库
相关推荐技能
qmd
开发这是一个本地搜索和索引的CLI工具,支持BM25、向量搜索和重排序功能。开发者可以用它快速索引本地文件(如Markdown文档)并进行混合搜索,特别适合代码库或文档的本地检索。它还提供MCP模式,能轻松集成到Claude开发环境中使用。
subagent-driven-development
开发该Skill用于在当前会话中执行包含独立任务的实施计划,它会为每个任务分派一个全新的子代理并在任务间进行代码审查。这种"全新子代理+任务间审查"的模式既能保障代码质量,又能实现快速迭代。适合需要在当前会话中连续执行独立任务,并希望在每个任务后都有质量把关的开发场景。
mcporter
开发mcporter Skill 让开发者能在Claude中直接管理和调用MCP服务器。它支持列出可用服务器、调用工具、处理OAuth认证以及管理服务器守护进程。开发者可以通过命令行式交互快速执行`mcporter list`查看服务器,或使用`mcporter call`直接调用工具,简化了MCP工作流程。
adk-deployment-specialist
开发这是一个用于部署和编排Google Vertex AI ADK智能体的Claude Skill,专为构建生产级多智能体系统而设计。它支持通过A2A协议进行智能体通信,提供代码执行沙箱和记忆库功能,并能处理智能体发现与任务提交。当开发者需要部署ADK智能体或编排多智能体协作时,可使用此Skill来简化Vertex AI Agent Engine的部署流程。
