ad-library-teardown
Use when the user wants to analyze active ads from Meta/Facebook, Google, or LinkedIn ad…
Use when the user wants to mine comments and replies for audience reactions, customer language, questions, objections, complaints, product ideas, buying intent, sentiment, or voice-of-customer insights from public social posts and videos.
$ npx -y skills add ScrapeCreators/social-media-research-skills --skill comment-mining --agent claude-codeHow it fires
How this skill gets triggered: by you, by Claude, or both.
/comment-miningContext preview
The summary Claude sees to decide when to auto-load this skill.
Use when the user wants to mine comments and replies for audience reactions, customer language, questions, objections, complaints, product ideas, buying intent, sentiment, or voice-of-customer insights from public social posts and videos.
name: comment-mining
description: Use when the user wants to mine comments and replies for audience reactions, customer language, questions, objections, complaints, product ideas, buying intent, sentiment, or voice-of-customer insights from public social posts and videos.
allowed-tools: Bash, Read, Write, WebFetch
version: 1.0.0
author: ScrapeCreators
license: MIT
homepage: https://scrapecreators.com
repository: https://github.com/ScrapeCreators/social-media-research-skills
metadata:
openclaw:
requires:
env:
- SCRAPECREATORS_API_KEY
primaryEnv: SCRAPECREATORS_API_KEY
homepage: https://scrapecreators.com
tags:
- social-media
- research
- scrapecreatorsMine public comments for what people actually ask, complain about, want, misunderstand, or repeat. The output should help with product research, content ideas, copywriting, objection handling, and audience understanding.
Use this skill when the user asks to:
| Platform | Endpoint | |---|---| | TikTok comments | `/v1/tiktok/video/comments` | | TikTok replies | `/v1/tiktok/video/comment/replies` | | YouTube comments | `/v1/youtube/video/comments` | | YouTube replies | `/v1/youtube/video/comment/replies` | | Instagram comments | `/v2/instagram/post/comments` | | Facebook comments | `/v1/facebook/post/comments` | | Facebook replies | `/v1/facebook/post/comment/replies` | | Reddit comments | `/v1/reddit/post/comments` | | Rumble comments | `/v1/rumble/video/comments` |
1. **Fetch comments**
2. **Clean lightly**
3. **Classify each useful comment** Use these buckets:
4. **Cluster themes**
5. **Turn insights into actions** Depending on the user's goal, produce:
# Comment Mining Report
## Summary
- Source(s): {urls}
- Comments analyzed: {count}
- Confidence: High/Medium/Low
## Top Themes
| Theme | Type | Frequency | Intensity | Representative quote |
|---|---|---:|---|---|
## Audience Questions
- "..."
## Objections and Concerns
- **Objection:** ...
- Evidence: "..."
- Response angle: ...
## Buying Intent / Demand Signals
- "..."
## Exact Language to Reuse
- "..."
- "..."
## Content Ideas From Comments
1. ...
2. ...Practical AI agent skills for social media research, powered by ScrapeCreators.
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