Gork data API. Uses Grok model to analyze tweet comments, extract valuable intelligence from replies, and fetch latest community sentiment on projects or topics.
Scanned 9/6/2026
Install to Claude Code
npx -y skills add LeoYeAI/openclaw-master-skills --skill gork-analysis --agent claude-codeInstalls into .claude/skills of the current project.
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---
name: gork-analysis
description: |
Gork data API. Uses Grok model to analyze tweet comments, extract
valuable intelligence from replies, and fetch latest community
sentiment on projects or topics.
metadata:
author: NotevenDe
version: 1.2.0
---
# Gork Analysis — Tweet Comment Intelligence
**Base URL**: `https://crab-skill.opsat.io`
## API Endpoint
`POST /api/gork/analyze` (requires Crab signature headers)
| Field | Required | Description |
|-----------|----------|---------------------------------------------------------------------|
| `prompt` | Yes | Analysis prompt with context (tweet URL, project name, question) |
| `messages`| No | OpenAI-style message list; takes precedence over `prompt` if given |
Response: plain-text analysis generated by the Grok model.
## Use Cases & Prompt Patterns
### 1. Analyze comments on a specific tweet
Extract valuable information from replies — insider knowledge, community
warnings, technical critiques, sentiment signals.
```json
{
"prompt": "Analyze the comments and replies on this tweet: https://x.com/{username}/status/{id}\n\nFocus on:\n- High-value comments (technical insights, insider info, warnings)\n- Overall sentiment (bullish/bearish/neutral ratio)\n- Notable accounts that replied and their stance\n- Any claims or information worth verifying"
}
```
### 2. Get latest community sentiment on a project
Fetch what people are saying about a project right now.
```json
{
"prompt": "What are the latest comments and discussions about {project_name} (${ticker}) on Twitter/X?\n\nFocus on:\n- Recent criticisms or concerns\n- Notable endorsements or callouts\n- Any news, events, or incidents being discussed\n- Red flags mentioned by the community"
}
```
### 3. Deep dive on a topic or controversy
When Step 4 (deep dig) surfaces a lead worth investigating via social data.
```json
{
"prompt": "Search for discussions about {specific topic} related to {project_name}.\n\nFor example: '{project_name} + scam', '{team_member} + rug', '{project_name} + hack'\n\nSummarize what the community is saying and whether concerns are substantiated."
}
```
## Key Rules
- **Max 2 calls per research** — pick the top tweet (highest engagement) and the
latest tweet (most recent). Do not make additional calls for project-level sentiment.
- **Always include tweet URL or project context in the prompt** — Gork needs specific
context to return useful data, not generic questions
- **Use targeted prompts** — ask for specific information (comments, sentiment, controversy)
rather than broad "analyze this project"
- **Chain with Twitter data** — use tweet URLs discovered from `/api/twitter/tweets`
as input for Gork comment analysis
- **Deep dig exception** — Step 4 may make additional Gork calls only when a
high-value lead requires verification, but still keep total calls minimal
## Timeout & Fallback
Gork calls the Grok model for analysis, so response times are significantly
longer than standard APIs. **Allow up to 120 seconds** before considering a
request timed out.
| Scenario | Behavior |
|-------------------------|-----------------------|
| Gork API key not set | Skip Gork data |
| Response slow (< 120s) | **Keep waiting** — this is normal for LLM analysis |
| Gork request timeout (≥ 120s) | Retry once, then skip and record a warning |
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