用 Codex 或 Claude 帮你安装 复制这段 Prompt,粘贴到 Codex、Claude 或其他助手里,让它检查 Skill 页面并帮你完成安装。
直接命令不会经过审查 Prompt;运行前请先检查来源。
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Conduct deep academic research for philosophy, neuroscience, cognitive science, and theoretical computer science (computability, complexity, AI theory, logic). Use when user asks to: research academic topics, find scholarly papers, conduct literature reviews, analyze citations, synthesize research findings, explore philosophical arguments, investigate consciousness/cognition, study computability/decidability/Turing machines, or analyze academic debates. Triggers on: 'research papers', 'literature review', 'academic sources', 'scholarly articles', 'philosophy of mind', 'computability theory', 'neuroscience studies', 'find papers on', 'what does the research say'.
Create clear action plans with steps, success criteria, and risk awareness. Use before implementing features, making changes, starting projects, or anytime you need a roadmap to success. Triggers on "plan this", "how should we approach", "what's the strategy", "steps to complete", or when facing complex multi-step work.
Add keyboard navigation to a feature using CommandRegistryService. Use when implementing keyboard shortcuts, vim-style navigation, or hotkeys for a page or component.
基于 SOC 职业分类
正在显示 SKILL.md
| name | Selecting Agents |
| description | Decision guide for choosing the right specialized agent for each task type |
| when_to_use | before dispatching work to specialized agents, when multiple agents could apply |
| version | 1.0.0 |
Use the right agent for the job. Each agent is optimized for specific scenarios and follows a focused workflow.
This skill helps you choose which specialized agent to use based on the task at hand.
For automatic agent selection: When executing implementation plans, use the /cipherpowers:execute command which applies this skill's logic automatically with hybrid keyword/LLM analysis. Manual selection using this skill is for ad-hoc agent dispatch outside of plan execution.
When selecting agents (manually or automatically), you must analyze the task requirements and context, not just match keywords naively.
DO NOT use naive keyword matching:
DO use semantic understanding:
Examples of INCORRECT selection:
Examples of CORRECT selection:
Selection criteria:
Red flags that indicate you're selecting incorrectly:
When to use: After code changes that affect documentation
Scenarios:
Skill used: maintaining-docs-after-changes
Command: /cipherpowers:verify docs
Key characteristic: Reactive to code changes - syncs docs with current code state
When to use: Complex, multi-layered debugging requiring deep investigation
Scenarios:
Skills used: systematic-debugging, root-cause-tracing, defense-in-depth, verification-before-completion
Key characteristic: Opus-level investigation for complex scenarios, not simple bugs
When to use: Rust development tasks requiring TDD and code review discipline
Scenarios:
Skills used: test-driven-development, testing-anti-patterns, code-review-reception
Key characteristic: Enforces TDD, mandatory code review, project task usage
When to use: Reviewing code changes before merging
Scenarios:
Skill used: conducting-code-review
Command: /cipherpowers:code-review
Key characteristic: Structured review process with severity levels (BLOCKING/NON-BLOCKING)
When to use: Evaluating implementation plans before execution
Scenarios:
/cipherpowers:plan/cipherpowers:executeSkill used: verifying-plans
Command: /cipherpowers:verify plan
Key characteristic: Evaluates plan against 35 quality criteria across 6 categories (Security, Testing, Architecture, Error Handling, Code Quality, Process)
| Confusion | Correct Choice | Why |
|---|---|---|
| "Just finished feature, need docs" | technical-writer + /summarise | technical-writer syncs API/feature docs, /summarise captures learning |
| "Quick docs update" | technical-writer | All doc maintenance uses systematic process |
| "Fixed bug, should document" | /summarise command | Capturing what you learned, not updating technical docs |
| "Changed README" | Depends | Updated feature docs = technical-writer. Captured work summary = /summarise |
| "Production debugging done" | /summarise command | Document the investigation insights and lessons learned |
Scenario 1: Added new API endpoint → technical-writer - Code changed, docs need sync
Scenario 2: Spent 3 hours debugging Azure timeout → /summarise command - Capture the investigation, decisions, solution
Scenario 3: Both apply - finished user authentication feature → technical-writer first - Update API docs, configuration guide → /summarise second - Capture why you chose OAuth2, what issues you hit
Scenario 4: Random test failures in CI → ultrathink-debugger - Complex timing/environment issue needs deep investigation
Scenario 5: Simple bug fix in Rust → rust-agent - Standard development workflow with TDD
Scenario 6: Just finished writing implementation plan → plan-review-agent - Validate plan before execution
Scenario 7: About to execute plan, want quality check → plan-review-agent - Ensure plan is comprehensive and executable