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raas-dev
GitHub 创作者资料

raas-dev

按仓库查看 1 个 GitHub 仓库中的 9 个已收集 skills。

已收集 skills
9
仓库
1
更新
2026-07-26
仓库分布

Skills 分布在哪些仓库

按已收集 skill 数展示主要仓库,并显示它们在该创作者目录中的占比和职业覆盖。

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仓库与代表性 skills

token-optimizer
软件开发工程师

Find the ghost tokens. Audit Claude Code or Codex setup, see where context goes, fix it. Use when context feels tight.

2026-07-26
browser-harness
软件开发工程师

Always use browser-harness for any web interaction: automation, scraping, testing, or site/app work.

2026-06-22
intent-layer
软件开发工程师

Set up hierarchical Intent Layer (AGENTS.md files) for codebases. Use when initializing a new project, adding context infrastructure to an existing repo, user asks to set up AGENTS.md, add intent layer, make agents understand the codebase, or scaffolding AI-friendly project documentation.

2026-05-30
open-computer-use
软件开发工程师

Platform-neutral guidance for using Open Computer Use, the open-source Computer Use MCP server and CLI for macOS, Linux, and Windows. Use when an agent needs to install, verify, troubleshoot, configure, or operate Open Computer Use through its native CLI, stdio MCP server, or direct Computer Use tool calls.

2026-05-26
graphify
数据科学家

any input (code, docs, papers, images, video) → knowledge graph → clustered communities → HTML + JSON + GRAPH_REPORT.md. Use when user asks any question about a codebase, project content, architecture, or file relationships — especially if graphify-out/ exists. Provides persistent graph with god nodes, community detection, and BFS/DFS query tools.

2026-05-19
brownfield-onboarding
软件开发工程师

This skill helps users get started with existing (brownfield) projects by scanning the codebase, documenting structure and purpose, analyzing architecture and technical stack, identifying design flaws, suggesting improvements for testing and CI/CD pipelines, and generating AI agent constitution files (AGENTS.md) with project-specific context, coding principles, and UI/UX guidelines.

2026-05-02
agentic-eval
软件开发工程师

Patterns and techniques for evaluating and improving AI agent outputs. Use this skill when: - Implementing self-critique and reflection loops - Building evaluator-optimizer pipelines for quality-critical generation - Creating test-driven code refinement workflows - Designing rubric-based or LLM-as-judge evaluation systems - Adding iterative improvement to agent outputs (code, reports, analysis) - Measuring and improving agent response quality

2026-04-12
skill-conductor
软件开发工程师

Create, edit, evaluate, and package agent skills. Use when building a new skill from scratch, improving an existing skill, running evals to test a skill, benchmarking skill performance, optimizing a skill's description for better triggering, reviewing third-party skills for quality, or packaging skills for distribution. Not for using skills or general coding tasks.

2026-03-28
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