Overview
- Skill Key
- erinyu/openclaw-for-doctor
- Author
- erinyu
- Source Repo
- openclaw/skills
- Version
- -
- Source Path
- skills/erinyu/openclaw-for-doctor
- Latest Commit SHA
- 2a28b570a933513670a8ab01f2f5d539d81e39c4
Stars
0
Installs
0
Status
ACTIVE
Visibility
PUBLIC
直接复制以下提示词,发送给你的 AI 助手即可完成安装。
请先检查是否已安装 SkillHub 商店,若未安装,请根据 https://skillhub-1388575217.cos.ap-guangzhou.myqcloud.com/install/skillhub.md 安装 SkillHub 商店,然后安装 Openclaw For Doctor 技能。 若已安装,则直接安装 Openclaw For Doctor 技能。
# openclaw-for-doctor Clinical decision support assistant. Route every request through three decisions, then produce structured output. ## Step 1 — Detect Use Case | Use Case | Signals | |---|---| | `diagnosis` | symptoms, differential, workup, imaging, labs, "what is it" | | `treatment_rehab` | management, dosing, protocol, rehab, follow-up plan | | `teaching` | slides, rounds, teaching material, case conference, residency, coach | | `research` | hypothesis, study design, literature review, manuscript, protocol | ## Step 2 — Select Role Stage Auto-select unless the user specifies one explicitly. | Stage | When | Output focus | |---|---|---| | `encyclopedia` | guideline/evidence lookup, single factual question | Concise reference answer with evidence level and source | | `discussion_partner` | complex case, multiple differentials, uncertainty | Structured differential reasoning with pros/cons per hypothesis | | `trusted_assistant` | deliverable requested (plan, slides, note, draft) | Actionable document ready to use | | `mentor` | teaching, coaching, board prep, oral exam practice | Teaching points, questions, pitfall list | Keyword shortcuts: "teach/coach/board/residency" → mentor; "draft/generate/prepare/slides/manuscript" → trusted_assistant; "case/differential/unclear/complex/risk" → discussion_partner; "guideline/evidence/dose/criteria/contraindication" → encyclopedia. ## Step 3 — Select Reasoning Mode | Mode | When | Behavior | |---|---|---| | `strict` | diagnosis, treatment_rehab | Guideline-backed claims only; explicitly state uncertainty; never speculate without flagging | | `innovative` | teaching, research | Include testable alternatives and creative framings; clearly mark as hypothesis-level | ## Output Structure Always produce output in this order: ### Summary One sentence: what was delivered and at what level. ### Analysis - Use-case and role stage selected (and why if non-obvious) - Key clinical or educational framing of the problem - Unc...
# openclaw-for-doctor
面向医生的 OpenClaw 专业助手:
以临床决策为核心入口,逐步扩展到教学与科研;支持多渠道触达与任务交付回执。
## 产品价值
- 提升临床决策效率:把病例信息转成可执行的鉴别诊断与下一步动作。
- 保持医学严谨性:临床场景默认走 `strict`,明确不确定性与安全边界。
- 保留创新空间:教学/科研场景可走 `innovative`,输出可验证的新假设。
- 打通交付链路:结果可经飞书、钉钉、邮件、微信、小红书或 WebChat 触达。
```mermaid
flowchart LR
A[医生提出任务] --> B[角色/模式路由]
B --> C[结构化医学推理]
C --> D[行动计划与证据锚点]
D --> E[多渠道交付]
E --> F[任务状态回执与追踪]
```
## 角色与模式
```mermaid
flowchart LR
E1[encyclopedia\n查文献/查指南] --> E2[discussion_partner\n复杂病例讨论]
E2 --> E3[trusted_assistant\n交付可执行方案]
E3 --> E4[mentor\n带教与能力提升]
```
```mermaid
flowchart TD
U[用户请求] --> C{使用场景}
C -->|诊断/治疗/康复| S[strict\n高证据优先]
C -->|教学/科研| I[innovative\n创新假设 + 验证要求]
```
## 典型用例
| 用例 | 输入 | 输出 | 价值 |
|---|---|---|---|
| 复杂临床病例 | 症状、病史、化验、影像摘要 | 鉴别诊断 + 24/72 小时行动计划 + 风险提示 | 缩短决策时间,降低遗漏风险 |
| 规培带教 | 病例主题、教学对象、时长 | 10 页教学骨架 + 提问点 + 常见误区 | 快速形成高质量带教材料 |
| 科研起题 | 研究方向、目标人群、终点 | 文献矩阵草案 + 假设 + 可行性约束 | 降低从 0 到 1 的启动成本 |
## 系统架构
```mermaid
graph TD
API[FastAPI API Layer] --> Router[Role/Mode Router]
Router --> Engine[Doctor Assistant Engine]
Engine --> Store[Task Store\nSQLite or Memory]
Engine --> Dispatcher[Channel Dispatcher]
Dispatcher --> Feishu[Feishu]
Dispatcher --> DingTalk[DingTalk]
Dispatcher --> Email[Email SMTP]
Dispatcher --> WeChat[WeChat]
Dispatcher --> XHS[Xiaohongshu]
Dispatcher --> Webchat[WebChat]
```
## 异步任务生命周期
```mermaid
sequenceDiagram
participant Doctor as 医生
participant API as API
participant Queue as Async Queue
participant Worker as Worker
partici...
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