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council-v2理事会 v2

Agent Skill

council-v2 用于查找、检索和筛选相关信息,适合在 OpenClaw 中需要根据关键词、任务场景或来源线索快速定位候选结果时使用。可结合来源仓库、安装命令和原始 README 继续核验具体用法。安装前建议确认权限范围、维护状态,以及是否会触发联网、命令执行或文件读写。

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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:council-v2(理事会 v2)
来源仓库:https://github.com/zurbrick/council-v2
安装命令:
openclaw skills install council-v2
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 council-v2

简介

council-v2采用多模型委员会审查机制,产生3-5名独立人工智能审查员。

  • 通过机械综合和投票决定结论,避免协调者偏见影响。
  • 适合对准确性要求高的决策支持场景。council-v2 属于研究检索类 Skill,可作为该场景下的辅助能力补充。
  • 需配置多个模型API并确保网络连接稳定。
  • 建议根据任务复杂度调整参与模型的组合策略。

SKILL.md

name
council-v2
description
>
version
2.0.3

Council v2

A hardened OpenClaw skill for multi-model council reviews. It dispatches independent reviewers, collects structured JSON, and applies a mechanical synthesis protocol so the final verdict is driven by votes and critical findings — not orchestrator vibes.

Primary entrypoint: bash skills/council-v2/scripts/council.sh review <type> [file]

When to Use

Use when a single model reviewing its own work is not enough:

  • Code review before merge or deployment
  • Plan review before committing resources
  • Architecture review for important technical decisions
  • Decision review when multiple plausible options exist
  • Security-sensitive or irreversible choices
  • Pre-flight review, adversarial critique, or second-opinion work

When Not to Use

Do not use for:

  • One-line fixes or trivial edits
  • Low-stakes decisions where overhead exceeds risk
  • Purely factual lookups with no judgment call
  • Work already reviewed recently with no material change

Council Shape

Two tiers are supported:

  • Standard — 3 reviewers for routine code, plan, and decision reviews
  • Full — 5 reviewers for high-stakes, security-sensitive, or irreversible choices

Tier selection heuristic

Use Standard when: routine code changes, internal plans, reversible decisions, low blast radius. Use Full when: security-critical, production-facing architecture, irreversible commitments, high cost of being wrong, or when you want maximum coverage.

When in doubt, start Standard. Escalate to Full if the Standard result is split or if critical findings surface that need more perspectives.

Cost note

Full Council runs 5 model calls instead of 3. That is ~1.7x the token cost of Standard. Use Full when the cost of a bad decision exceeds the cost of the extra API calls — which for security, architecture, and irreversible choices, it almost always does.

Detailed role composition and synthesis rules live in:

  • references/review-types.md
  • references/role-prompts.md
  • references/synthesis-rules.md

Review Types

TypeTypical use
codeSource files, scripts, patches, PR diffs
planProposals, project plans, rollout plans
architectureSystems design, infra decisions, workflows
decisionA/B/C choices with tradeoffs

Definitions: references/review-types.md

Quick Start

# Standard code review
bash skills/council-v2/scripts/council.sh review code src/auth.py

# Force full plan review
bash skills/council-v2/scripts/council.sh review plan proposal.md --tier full

# Architecture review from stdin
cat design.md | bash skills/council-v2/scripts/council.sh review architecture --tier full

# Decision review with options
bash skills/council-v2/scripts/council.sh review decision options.md --options "SQLite,Postgres,Cloud SQL"

# Emit orchestration plan as JSON
bash skills/council-v2/scripts/council.sh review code src/auth.py --format json

How It Works

  1. Loads content from file or stdin
  2. Selects Standard or Full tier
  3. Builds reviewer prompts from references/role-prompts.md
  4. Emits an orchestration plan suitable for sessions_spawn
  5. Collects reviewer JSON outputs
  6. Runs python3 scripts/synthesize.py ...
  7. Returns synthesis with mechanical result, minority report, and conditions

Interpreting Results

The synthesizer returns structured JSON and a meaningful exit code:

Exit codeMeaningWhat to do
0Approve — clear majority, no criticalsShip it
1Reject or Blocked — majority rejected or a critical finding blockedAddress the critical findings or rethink the approach
2Approve with conditions — mixed or conditional majorityFix the flagged conditions, then re-review or proceed with documented risk
3Error — invalid input or synthesis failureCheck reviewer JSON for malformed output; see error handling below

Reading the synthesis output

  • mechanical_result: The vote-driven verdict. This is the answer.
  • critical_blocks: Any critical findings that auto-blocked approval. Address these first.
  • conditions: Aggregated recommendations from warning-level findings. These are your fix list.
  • minority_report: The strongest dissent from the majority. Read this even if you agree with the majority — it is often where the best insight lives.
  • anti_consensus_check: Fires on unanimous decisions. Treat the counterargument seriously.

Error Handling

Reviewer returns invalid JSON

synthesize.py validates every reviewer output against required fields. If a reviewer returns malformed JSON, synthesis exits with code 3 and prints an error message.

What to do:

  1. Check the raw reviewer output for the failing model
  2. Re-run that single reviewer (the orchestration plan shows which models to dispatch)
  3. If the model consistently fails, substitute it — see model override flags below

Provider is down or times out

If a provider fails to respond, the review set will be incomplete. Run synthesis on whatever outputs you have — a 2-of-3 Standard review is still useful. Note the missing reviewer in your assessment.

Model override flags

Override any model at the command line:

bash skills/council-v2/scripts/council.sh review code src/auth.py \
 --opus claude-sonnet-4 \
 --gpt gpt-4.1 \
 --grok grok-3

Available flags: --opus, --gpt, --grok, --deepseek, --gemini

Model Diversity

The council's value comes from different providers with different training data and different biases reviewing the same decision. The specific model versions (Opus, GPT-5.4, Grok 4, etc.) matter less than the diversity. Swap in whatever top-tier models you have access to — what matters is that they are not all from the same provider.

Retrospectives

scripts/retro.sh generates a structured retrospective template for reviewing past council decisions against actual outcomes.

# Review the 5 most recent decisions in a directory
bash skills/council-v2/scripts/retro.sh ./council-outputs/ 5

When to run retros

Run monthly, or after any decision where the outcome surprised you. The retro surfaces:

  • Which reviewers provided signal vs. noise
  • Whether critical findings were real or false alarms
  • Whether synthesis preserved minority views accurately
  • Prompt changes to consider for role-prompts.md

Feed retro findings back into references/role-prompts.md to calibrate the council.

Notes

  • Requires bash, python3, and OpenClaw reviewer dispatch capability
  • Model aliases can be overridden — see model override flags above
  • Synthesis rules are documented in references/synthesis-rules.md

References

  • references/review-types.md — review type definitions and tier recommendations
  • references/role-prompts.md — reviewer role prompts and shared output instructions
  • references/schema.md — JSON schemas for reviewer output and synthesis output
  • references/synthesis-rules.md — mechanical synthesis protocol and edge cases

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