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SKILL verified MIT Self-run

Podcast Transcribe

skill-chubbyguan-chubbyskills-podcast-transcribe · by chubbyguan

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Install

$ agentstack add skill-chubbyguan-chubbyskills-podcast-transcribe

✓ scanned · ✓ verified, works with Claude Code, Cursor, and more.

Security review

✓ Passed

No issues found. Passed automated security review. · v0.1.0 How review works →

  • Prompt-injection patterns
  • Secret / credential exfiltration
  • Dangerous shell & filesystem operations
  • Untrusted network calls
  • Known-malicious package signatures

What it can access

  • Network access No
  • Filesystem access No
  • Shell / process execution No
  • Environment & secrets No
  • Dynamic code execution No

From automated source analysis of v0.1.0. “Used” means the capability is present in the source — more access means more to trust, not that it’s unsafe.

View the full security report →

Verified badge

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[![AgentStack Verified](https://agentstack.voostack.com/badges/verified.svg)](https://agentstack.voostack.com/security/report/skill-chubbyguan-chubbyskills-podcast-transcribe)

Reliability & compatibility

Security review passed
0 installs to date
no reviews yet
3mo ago

Declared compatibility

Claude CodeClaude Desktop

Compatibility is declared by the source manifest. End-to-end runtime verification is coming, see below.

Preview Execution monitoring

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How agent discovery & health will work →
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About

播客转录 Skill

将播客音频下载并转录为文字,存为 Markdown 文件。支持小宇宙、喜马拉雅等平台。

环境要求

# Python 3.9+
python -m venv .venv
source .venv/bin/activate

# 依赖
pip install faster-whisper

# 系统依赖
# macOS: brew install ffmpeg
# Ubuntu: sudo apt install ffmpeg

使用方法

单集转录

python scripts/transcribe.py "https://www.xiaoyuzhoufm.com/episode/xxxxx"

批量转录(RSS)

python scripts/batch_transcribe.py --rss-url "http://www.ximalaya.com/album/xxxxx.xml" --count 10

流程

Step 1: 下载音频

支持多种来源:

  • 小宇宙单集链接(自动从页面提取音频 URL)
  • 喜马拉雅链接
  • 直接音频 URL(.mp3/.m4a/.wav)
  • RSS feed 中的音频链接

注意:小宇宙/喜马拉雅等平台会从页面 HTML 中自动解析 og:audio、`` 标签或内嵌 JSON 获取真实音频地址,无需手动提取。

Step 2: faster-whisper 转录

from faster_whisper import WhisperModel

model = WhisperModel('small', device='cpu', compute_type='int8')
segments, info = model.transcribe(
    audio_path,
    language='zh',
    beam_size=5,
    vad_filter=True,
)

Step 3: 生成 Markdown

自动创建带 frontmatter 的 Markdown 文件。

性能数据

| 模型 | 速度 (CPU) | 中文准确率 | |------|------|------| | faster-whisper tiny | ~149s/1h | 一般 | | faster-whisper small | ~10min/h | 良好 (~85-90%) | | faster-whisper large-v3 | ~30-60min/h | 最佳 |

已知限制

  • CPU 推理较慢,长播客需要较长时间
  • 中文准确率约 85-90%,需要人工校对
  • 首次运行会下载模型(small: ~461MB)
  • 不支持说话人分离

参考项目

⚖️ 合规声明

仅供个人学习与研究使用。请遵守目标平台的服务条款(ToS)与 robots 规则,控制请求频率,不要用于批量抓取、商用爬取或侵犯他人权益的场景。下载内容的版权归原作者所有。

Source & license

This open-source skill is cataloged on AgentStack and links to its original source — we do not rehost the code.

Install and usage instructions live in the source repository linked above.

Reviews

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Versions

  • v0.1.0 Imported from the upstream source.