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Local Kokoro-82M text-to-speech MCP server that speaks through your machine's audio

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ClaudeWave Trust Score
72/100
· OK
Passed
  • Actively maintained (<30d)
  • Clear description
  • Documented (README)
Flags
  • !Licence file present but not machine-readable
Last scanned: 8/23/2026
Install in Claude Code / Claude Desktop
Method: UVX (Python) · mcp-kokoro-tts-provision
Claude Code CLI
claude mcp add mcp-kokoro-tts -- uvx mcp-kokoro-tts-provision
claude_desktop_config.json (Claude Desktop)
{
  "mcpServers": {
    "mcp-kokoro-tts": {
      "command": "uvx",
      "args": ["mcp-kokoro-tts-provision"]
    }
  }
}
1. Run the command above in your terminal (Claude Code), or paste the JSON config into claude_desktop_config.json (Claude Desktop).
2. Replace any <placeholder> values with your API keys or paths.
3. Restart Claude. The MCP server and its tools appear automatically.
Use cases

MCP Servers overview

# mcp-kokoro-tts

<!-- mcp-name: io.github.mrfqcentic/mcp-kokoro-tts -->

Local Kokoro-82M text-to-speech MCP server. When your agent calls `speak`, it synthesizes speech and plays it on your machine so you can hear the harness talk.

Works with any MCP client: Claude Desktop, Claude Code, Cursor, VS Code, opencode, Cline, and more. One short config block, no API keys — synthesis runs locally with [Kokoro-82M](https://huggingface.co/hexgrad/Kokoro-82M).

On first start, the server provisions two things that are not on PyPI: the Kokoro-82M weights (~312 MB) into a local cache, and spaCy's English model (`en_core_web_sm`) into the same Python environment the server is running in. That second install is required because Kokoro's G2P pipeline loads spaCy, and a `uvx` / `uv tool` environment will not have the model unless this package puts it there.

## Install

Add to your client's MCP config:

```json
{
  "mcpServers": {
    "mcp-kokoro-tts": {
      "command": "uvx",
      "args": ["mcp-kokoro-tts"]
    }
  }
}
```

Requires Python 3.12 and [uv](https://docs.astral.sh/uv/). The first server start provisions Kokoro weights and the spaCy English model automatically.

To pre-download both without starting the MCP server:

```bash
uvx mcp-kokoro-tts-provision
```

## Make the agent call it

Add one line to your `AGENTS.md` / `CLAUDE.md` / system prompt:

```
When the user wants to hear something spoken aloud, call the `speak` tool with clear, natural text.
```

## Tools

### `speak`

Synthesizes speech, writes a WAV file, and plays it locally.

| Param | Required | Description |
|---|---|---|
| `text` | yes | Text to speak (max 500 chars) |
| `voice` | no | Voice id (e.g. `af_heart`) or absolute path to a `.pt` voice file |
| `speed` | no | Playback speed multiplier (default `1.0`) |

### `list_voices`

Lists available Kokoro voices and the currently selected default.

## Choosing your voice

Resolution order:

1. `TTS_VOICE` env var — voice id or absolute `.pt` path
2. A file in the package `voices/` folder whose name starts with `default`
3. First `.pt` file in `voices/` (alphabetical)
4. The model's bundled `af_heart` voice

```json
{
  "mcpServers": {
    "mcp-kokoro-tts": {
      "command": "uvx",
      "args": ["mcp-kokoro-tts"],
      "env": {
        "TTS_VOICE": "af_heart"
      }
    }
  }
}
```

## Environment variables

| Variable | Description |
|---|---|
| `TTS_VOICE` | Default voice id or absolute `.pt` path |
| `TTS_MODEL_DIR` | Override model cache directory |
| `TTS_HF_CACHE_DIR` | Override Hugging Face hub cache directory |
| `TTS_OUTPUT_DIR` | Directory for generated WAV files |
| `TTS_PLAY` | Set to `0` to synthesize without local playback |
| `HF_TOKEN` | Optional Hugging Face token for faster downloads |

## Platforms

| OS | Synthesis | Playback |
|---|---|---|
| macOS | yes | `afplay` |
| Linux | yes | `ffplay`, `paplay`, or `aplay` |
| Windows | yes | PowerShell `MediaPlayer` |

`espeak-ng` is optional. English works without it; install it for better out-of-vocabulary coverage and some non-English languages.

## Publishing

Tagging a version runs GitHub Actions `publish.yml`, which uploads to **PyPI** then the **MCP Registry**.

Publishing to PyPI uses the repo secret `PYPI_TOKEN` (a PyPI API token). GitHub trusted publishing can also be configured on the PyPI project; this workflow authenticates with the token so a first release does not depend on pending-publisher matching.

### Release

1. Bump `version` in `pyproject.toml` (and `server.json` if you are not tagging yet)
2. Commit and tag: `git tag v0.1.2 && git push origin v0.1.2`
3. GitHub Actions runs `publish.yml`:
   - `release` — typecheck, test, build wheel/sdist
   - `pypi-publish` — upload to PyPI with `PYPI_TOKEN`
   - `mcp-registry` — OIDC → MCP Registry (after PyPI succeeds)

## Development

```bash
cd mcps-tts
python3.12 -m venv .venv
source .venv/bin/activate
pip install -e ".[dev]"
pyright
pytest
python -m mcp_kokoro_tts
```

## License

Apache-2.0. See [LICENSE](LICENSE) and [NOTICE](NOTICE). Kokoro-82M model weights are downloaded separately under their Apache-2.0 license.

What people ask about mcp-kokoro-tts

What is mrfqcentic/mcp-kokoro-tts?

+

mrfqcentic/mcp-kokoro-tts is mcp servers for the Claude AI ecosystem. Local Kokoro-82M text-to-speech MCP server that speaks through your machine's audio It has 0 GitHub stars and its last recorded update is dated 2026-08-22.

How do I install mcp-kokoro-tts?

+

You can install mcp-kokoro-tts by cloning the repository (https://github.com/mrfqcentic/mcp-kokoro-tts) or following the README instructions on GitHub. ClaudeWave also provides quick install blocks on this page.

Is mrfqcentic/mcp-kokoro-tts safe to use?

+

Our security agent has analyzed mrfqcentic/mcp-kokoro-tts and assigned a Trust Score of 72/100 (tier: OK). See the full breakdown of passed checks and flags on this page.

Who maintains mrfqcentic/mcp-kokoro-tts?

+

mrfqcentic/mcp-kokoro-tts is maintained by mrfqcentic. The last recorded GitHub activity is dated 2026-08-22, with 0 open issues.

Are there alternatives to mcp-kokoro-tts?

+

Yes. On ClaudeWave you can browse similar mcp servers at /categories/mcp, sorted by popularity or recent activity.

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