scrub-reflection-self-improvement — community scrub-reflection-self-improvement, community, ide skills, Claude Code, Cursor, Windsurf

v1.0.0

关于此技能

适用于像Cursor、Windsurf和Claude Code这样的AI代理,需要高级的自我改进和反思能力来开发基础模型 Scheduled scrub workflow for ongoing self-improvement in the Marin repository.

marin-community marin-community
[789]
[96]
更新于: 3/11/2026

Killer-Skills Review

Decision support comes first. Repository text comes second.

Reference-Only Page Review Score: 9/11

This page remains useful for operators, but Killer-Skills treats it as reference material instead of a primary organic landing page.

Original recommendation layer Concrete use-case guidance Explicit limitations and caution Quality floor passed for review
Review Score
9/11
Quality Score
51
Canonical Locale
en
Detected Body Locale
en

适用于像Cursor、Windsurf和Claude Code这样的AI代理,需要高级的自我改进和反思能力来开发基础模型 Scheduled scrub workflow for ongoing self-improvement in the Marin repository.

核心价值

赋予代理识别GitHub项目(如marin-community/marin)中的高杠杆改进,通过分析最近的问题、PR反馈和操作摩擦,利用具体的实施计划和GitHub工作流优化

适用 Agent 类型

适用于像Cursor、Windsurf和Claude Code这样的AI代理,需要高级的自我改进和反思能力来开发基础模型

赋予的主要能力 · scrub-reflection-self-improvement

分析最近的问题以识别反复出现的操作摩擦
为高杠杆改进生成具体的实施计划
调试贡献者工作流和文档以解决重复的混淆

! 使用限制与门槛

  • 需要GitHub访问和项目权限
  • 仅限开源基础模型开发
  • 需要定期清理以实现最佳性能

Why this page is reference-only

  • - Current locale does not satisfy the locale-governance contract.

Source Boundary

The section below is supporting source material from the upstream repository. Use the Killer-Skills review above as the primary decision layer.

实验室 Demo

Browser Sandbox Environment

⚡️ Ready to unleash?

Experience this Agent in a zero-setup browser environment powered by WebContainers. No installation required.

Boot Container Sandbox

常见问题与安装步骤

以下问题与步骤与页面结构化数据保持一致,便于搜索引擎理解页面内容。

? FAQ

scrub-reflection-self-improvement 是什么?

适用于像Cursor、Windsurf和Claude Code这样的AI代理,需要高级的自我改进和反思能力来开发基础模型 Scheduled scrub workflow for ongoing self-improvement in the Marin repository.

如何安装 scrub-reflection-self-improvement?

运行命令:npx killer-skills add marin-community/marin/scrub-reflection-self-improvement。支持 Cursor、Windsurf、VS Code、Claude Code 等 19+ IDE/Agent。

scrub-reflection-self-improvement 适用于哪些场景?

典型场景包括:分析最近的问题以识别反复出现的操作摩擦、为高杠杆改进生成具体的实施计划、调试贡献者工作流和文档以解决重复的混淆。

scrub-reflection-self-improvement 支持哪些 IDE 或 Agent?

该技能兼容 Cursor, Windsurf, VS Code, Trae, Claude Code, OpenClaw, Aider, Codex, OpenCode, Goose, Cline, Roo Code, Kiro, Augment Code, Continue, GitHub Copilot, Sourcegraph Cody, and Amazon Q Developer。可使用 Killer-Skills CLI 一条命令通用安装。

scrub-reflection-self-improvement 有哪些限制?

需要GitHub访问和项目权限;仅限开源基础模型开发;需要定期清理以实现最佳性能。

安装步骤

  1. 1. 打开终端

    在你的项目目录中打开终端或命令行。

  2. 2. 执行安装命令

    运行:npx killer-skills add marin-community/marin/scrub-reflection-self-improvement。CLI 会自动识别 IDE 或 AI Agent 并完成配置。

  3. 3. 开始使用技能

    scrub-reflection-self-improvement 已启用,可立即在当前项目中调用。

! 参考页模式

此页面仍可作为安装与查阅参考,但 Killer-Skills 不再把它视为主要可索引落地页。请优先阅读上方评审结论,再决定是否继续查看上游仓库说明。

Imported Repository Instructions

The section below is supporting source material from the upstream repository. Use the Killer-Skills review above as the primary decision layer.

Supporting Evidence

scrub-reflection-self-improvement

安装 scrub-reflection-self-improvement,这是一款面向AI agent workflows and automation的 AI Agent Skill。支持 Claude Code、Cursor、Windsurf,一键安装。

SKILL.md
Readonly
Imported Repository Instructions
The section below is supporting source material from the upstream repository. Use the Killer-Skills review above as the primary decision layer.
Supporting Evidence

scrub-reflection-self-improvement

Use this skill on scheduled scrub turns to identify and land high-leverage improvements in marin-community/marin.

Focus

  • Look for improvements from recent issues, PR feedback, and recurring operational friction.
  • Prefer one concrete implementation per run when feasible.
  • If implementation is blocked, produce a concrete plan and capture follow-up work in GitHub.

Candidate Signals

  • Repeated confusion in docs, recipes, or contributor workflows.
  • Recurring failures or avoidable manual steps in experiments, scripts, and infra operations.
  • Capability gaps that reduce the value of agent-assisted contributions.

Decision Heuristics

  • Pick the highest-leverage change with the lowest coordination overhead.
  • De-duplicate against existing issues/PRs before opening new work.
  • When an improvement changes recurring workflow guidance, codify it in durable repo instructions: AGENTS.md for cross-cutting agent behavior, or .agents/skills/ for repeatable task workflows.
  • If no justified improvement exists now, choose a no-op outcome.

Output

  • Keep rationale explicit: observed gap, change made (or plan), and expected impact.
  • Prefer durable artifacts over transient notes: land guidance updates in AGENTS.md and/or recipe docs when that is the primary improvement.
  • Treat local-only edits as incomplete work. If you modify files, publish the result (commit/push and open or update a PR) before finishing this scrub run.
  • If publish is blocked (auth, permissions, CI infra, etc.), report the blocker and set a future needs_followup_at instead of ending the run.
  • If you choose no-op, include explicit inspected signals and why no justified improvement exists now.
  • Always end with the required HARNESS_SCRUB_LOOP footer (provided by the base scrub contract).

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