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Audio Transcription

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Captures and transcribes system audio in real-time using OpenAI Whisper, enabling meeting transcription, content creation, and accessibility through natural lan

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Описание

Captures and transcribes system audio in real-time using OpenAI Whisper, enabling meeting transcription, content creation, and accessibility through natural language.

README

Real-time audio transcription using OpenAI Whisper. Capture and transcribe system audio (meetings, videos, music) automatically with AI assistance through Cursor or Claude Desktop.

✨ Features

  • 🎤 Real-time transcription - Captures and transcribes audio as it plays
  • 🔄 Zero installation - Use with npx, no global install needed
  • 🤖 AI-powered - Uses OpenAI's Whisper API for accurate transcription
  • 📝 Timestamped transcripts - Every entry is timestamped in markdown format
  • 🔒 Session isolation - Each session gets its own unique transcript file
  • Smart silence detection - Automatically pauses when no audio detected
  • 🎯 Automated setup - One command sets up audio routing
  • 🧪 Built-in testing - Verify your setup before starting

🚀 Quick Start (5 Minutes)

Step 1: Run Automated Setup

The setup script installs everything you need and guides you through configuration:

npx audio-transcription-mcp setup

What this does:

  • ✅ Installs Homebrew (if needed)
  • ✅ Installs ffmpeg for audio processing
  • ✅ Installs BlackHole virtual audio driver
  • ✅ Guides you through creating a Multi-Output Device (or does it automatically!)
  • ✅ Takes 5 minutes, mostly automated

First time? The script will walk you through everything with clear instructions. Don't worry if it asks for your Mac password - that's normal for installing software!

Step 2: Test Your Setup

Verify everything works before using it:

npx audio-transcription-mcp test

This captures 5 seconds of audio and shows you if it's working correctly.

Step 3: Configure Your AI Assistant

Add to your Cursor or Claude Desktop config:

Cursor Configuration (click to expand)

Edit ~/.cursor/config.json:

{
  "mcpServers": {
    "audio-transcription": {
      "command": "npx",
      "args": ["-y", "audio-transcription-mcp"],
      "env": {
        "OPENAI_API_KEY": "sk-your-key-here",
        "INPUT_DEVICE_NAME": "BlackHole"
      }
    }
  }
}

Then restart Cursor and ask:

"Start transcribing audio"

Claude Desktop Configuration (click to expand)

Edit ~/Library/Application Support/Claude/claude_desktop_config.json:

{
  "mcpServers": {
    "audio-transcription": {
      "command": "npx",
      "args": ["-y", "audio-transcription-mcp"],
      "env": {
        "OPENAI_API_KEY": "sk-your-key-here",
        "INPUT_DEVICE_NAME": "BlackHole",
        "OUTFILE_DIR": "/Users/yourname/Documents/Transcripts"
      },
      "allowedDirectories": [
        "/Users/yourname/Documents/Transcripts"
      ]
    }
  }
}

Important:

  1. Create the directory: mkdir -p ~/Documents/Transcripts
  2. Replace yourname with your actual username
  3. Restart Claude Desktop

Then ask:

"Start transcribing audio"

Step 4: Set System Output

Go to System Settings > Sound > Output and select "Multi-Output Device"

This routes audio to both your speakers (so you can hear) and BlackHole (for transcription).

Step 5: Start Transcribing!

In Cursor or Claude Desktop, just ask:

"Start transcribing audio"

Your AI assistant will start capturing and transcribing audio in real-time!


📖 What You Need

🎯 Use Cases

  • Meeting transcription - Zoom, Google Meet, Teams calls
  • Content creation - Transcribe videos, podcasts, or music
  • Accessibility - Real-time captions for any audio
  • Note-taking - Automatic transcripts of lectures or presentations
  • Research - Transcribe interviews or focus groups

🔧 Troubleshooting

Audio Not Being Captured

Problem: Test shows silent or very low audio levels

Solution:

  1. Check System Settings > Sound > Output is set to "Multi-Output Device"
  2. Open Audio MIDI Setup and verify both outputs are checked:
    • ☑ Built-in Output
    • ☑ BlackHole 2ch
  3. Play some audio and run npx audio-transcription-mcp test again

BlackHole Not Showing Up

Problem: BlackHole doesn't appear in device list

Solution: Restart your Mac. Audio drivers require a restart to be recognized by the system.

Setup Script Fails

Problem: Automated setup doesn't work

Solution: The script will fall back to manual mode with clear instructions. This is normal on first run if accessibility permissions aren't granted. Just follow the 4-step guide shown.

Want to Start Over?

If you need to remove everything and start fresh:

# Uninstall BlackHole and ffmpeg
brew uninstall blackhole-2ch ffmpeg

# Delete Multi-Output Device
# 1. Open Audio MIDI Setup
# 2. Select "Multi-Output Device" in left sidebar
# 3. Press Delete key

# Then run setup again
npx audio-transcription-mcp setup

Need More Help?


📚 Additional Documentation

🛠️ Advanced Usage

Standalone CLI Mode

You can use this as a standalone CLI without MCP:

# Start transcription (saves to meeting_transcript.md)
npx audio-transcription-mcp start

# Press Ctrl+C to stop

Configure via .env file:

OPENAI_API_KEY=sk-your-key-here
INPUT_DEVICE_NAME=BlackHole
CHUNK_SECONDS=8
OUTFILE=meeting_transcript.md

MCP Server Tools

When used with Cursor or Claude Desktop, these tools are available:

  • start_transcription - Start capturing and transcribing audio
  • pause_transcription - Pause transcription temporarily
  • resume_transcription - Resume after pause
  • stop_transcription - Stop and get session stats
  • get_status - Check if transcription is running
  • get_transcript - Retrieve current transcript content
  • clear_transcript - Clear and start fresh
  • cleanup_transcript - Delete transcript file

Configuration Options

Environment variables you can customize:

Variable Default Description
OPENAI_API_KEY (required) Your OpenAI API key
INPUT_DEVICE_NAME BlackHole Audio input device name
CHUNK_SECONDS 8 Seconds of audio per chunk
MODEL whisper-1 OpenAI Whisper model
OUTFILE_DIR process.cwd() Output directory for transcripts
SAMPLE_RATE 16000 Audio sample rate (Hz)
CHANNELS 1 Number of audio channels

🏗️ How It Works

  1. Audio Routing: Multi-Output Device sends system audio to both your speakers and BlackHole
  2. Capture: ffmpeg captures audio from BlackHole in 8-second chunks
  3. Processing: Audio is converted to WAV format suitable for Whisper API
  4. Transcription: Each chunk is sent to OpenAI Whisper for transcription
  5. Output: Timestamped text is appended to a markdown file in real-time
  6. Silence Detection: Automatically pauses after 32 seconds of silence to save API costs

💰 Costs & Performance

What You're Paying For

You ONLY pay for OpenAI Whisper API calls - everything else runs locally for free!

FREE (runs locally on your machine):

  • Audio capture with ffmpeg
  • Audio processing and buffer management
  • Silence detection and level analysis
  • File operations (writing/reading transcripts)
  • All MCP server operations

💰 PAID (OpenAI API):

  • Only the transcription API calls to OpenAI Whisper
  • $0.006 per minute of audio transcribed
  • Silent chunks are automatically skipped to save money

Actual Costs

With default 8-second chunks:

Duration API Calls Approximate Cost
1 minute ~7.5 chunks $0.006
1 hour ~450 chunks $0.36
8-hour workday ~3,600 chunks $2.88

Cost per chunk: ~$0.0008 (less than a tenth of a cent!)

Built-in Cost Savings

The tool includes smart silence detection that saves you money:

  • 🔇 Silent audio chunks are NEVER sent to OpenAI
  • 💰 Automatically tracks cost savings in the debug log
  • ⏸️ Auto-pauses after 32 seconds of silence
  • 📊 View statistics with get_status to see chunks skipped

Example: In a 1-hour meeting with 15 minutes of silence, you save ~$0.09 automatically!

Performance

  • Memory usage: 50-100 MB per session
  • CPU usage: Minimal (ffmpeg handles audio processing)
  • API latency: 1-3 seconds per chunk
  • Accuracy: 90-95% for clear speech
  • Network: Only during transcription API calls

Cost Optimization Tips

  1. Increase chunk size - Fewer API calls (set CHUNK_SECONDS=15)
  2. Use silence detection - Enabled by default, saves money automatically
  3. Pause when not needed - Use pause_transcription during breaks
  4. Monitor usage - Check OpenAI dashboard for actual costs

Bottom line: Transcription is cheap (~36¢/hour), runs mostly locally, and automatically saves money by skipping silence. You're only charged when actual speech is being transcribed.

🧪 Development & Testing

For contributors and developers:

📖 See MCP_SETUP.md for complete setup instructions

Just add to your config and restart - that's it!

See the npx configuration at the top of this README for Cursor and Claude Desktop.

For Standalone CLI (Local Development)

📖 See GETTING_STARTED.md for complete setup instructions

# Install dependencies
npm install
npm run build

# Configure environment
cp env.example .env  # Then add your OpenAI API key

# Run standalone CLI
npm start

📄 License & Contributing

This project is licensed under the MIT License - see the LICENSE file for details.

Contributions are welcome! Please feel free to submit a Pull Request.

Development Resources


Made with ❤️ for transcribing meetings, content, and conversations.

Star ⭐ this repo if you find it useful!

from github.com/pmerwin/audio-transcription-mcp

Установка Audio Transcription

У этого сервера нет опубликованного пакета — он собирается из исходников. Открой репозиторий и следуй инструкции в README.

▸ github.com/pmerwin/audio-transcription-mcp

FAQ

Audio Transcription MCP бесплатный?

Да, Audio Transcription MCP бесплатный — установка в пару кликов через Unyly без оплаты.

Нужен ли API-ключ для Audio Transcription?

Нет, Audio Transcription работает без API-ключей и переменных окружения.

Audio Transcription — hosted или self-hosted?

Self-hosted: сервер запускается локально на твоей машине командой из раздела установки.

Как установить Audio Transcription в Claude Desktop, Claude Code или Cursor?

Открой Audio Transcription на unyly.org, выбери вкладку своего клиента (Claude Desktop, Claude Code, Cursor) и нажми Install — конфиг сгенерируется автоматически, без правки JSON.

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