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。
npx skills add https://github.com/benjam3n/reasoningtool --skill dss命令会保持在同一行。复制前请横向滚动并检查完整内容。
想先保存到本地?可下载 SkillsMP 当前能够提供的文件。
Route any input through a branching question tree to narrow down the optimal response strategy before writing. Two stages — PERCEIVE (classify input) then ACT (select response). Covers all prompt types.
Generate exhaustive guesses about user input using ALL search methods with coverage tracking. Guessing is SEARCH through possibility space. Tracks space created vs space covered to ensure comprehensive exploration.
Systematically evaluate and select from a set of guesses, options, or possibilities. Combines ARAW analysis with prioritization to determine which guesses are strong, weak, actionable, or eliminable.
基于 SOC 职业分类
正在显示 SKILL.md
| name | dss |
| description | Complete system design workflow — from requirements through verified design. |
| output | {"format":"prose"} |
Input: $ARGUMENTS
Complete system design workflow — composes multiple sub-procedures to go from requirements gathering through design generation, evaluation, selection, and verification.
Define what the system must do:
Functional requirements (what it does):
Performance requirements (how well):
Interface requirements (how it connects):
Constraints (non-negotiable):
Quality attributes:
→ INVOKE: /rqg (requirements gathering) for thorough elicitation
Before designing from scratch:
→ INVOKE: /ans (analogous solutions) for cross-domain search
Based on Step 2:
| Situation | Path |
|---|---|
| Complete solution exists and fits | Adapt existing (Step 4) |
| Partial solution or pattern exists | Adapt + extend (Steps 4 + 5) |
| Nothing exists | Design from scratch (Steps 5-8) |
If adapting:
Create 2-3 distinct design approaches:
For each design option:
DESIGN OPTION [N]:
Name: [descriptive label]
Architecture: [high-level structure]
Key components: [major parts and their roles]
Technology choices: [what tools/frameworks/platforms]
Key tradeoff: [what this design optimizes for at the expense of]
Design generation techniques:
Compare options against requirements:
| Requirement | Design A | Design B | Design C |
|---|---|---|---|
| FR1 | [meets/partially/fails] | ||
| PR1 | [meets/partially/fails] | ||
| Cost | [estimate] | [estimate] | [estimate] |
| Complexity | [H/M/L] | [H/M/L] | [H/M/L] |
| Risk | [H/M/L] | [H/M/L] | [H/M/L] |
→ INVOKE: /crw (criteria weighted ranking) for systematic comparison
Based on evaluation:
Before implementation:
→ INVOKE: /vp (verification procedures) for systematic verification
SYSTEM DESIGN:
Requirements: [N functional, N performance, N interface, N constraints]
Design path: [adapt existing / extend / from scratch]
Selected design: [name]
Architecture: [high-level description]
Key components:
| Component | Function | Technology | Risk |
|-----------|----------|-----------|------|
| [component] | [what it does] | [how built] | [H/M/L] |
Alternatives rejected: [which and why]
Verification:
- Requirements coverage: [N/N mapped]
- Consistency: [issues found]
- Feasibility: [issues found]
Implementation priority: [what to build first — highest risk elements]