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MCP server for Luma AI video generation via Ace Data Cloud.

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Last scanned: 10/7/2026
Install in Claude Code / Claude Desktop
Method: pip / Python · mcp-luma
Claude Code CLI
claude mcp add lumamcp -- python -m mcp-luma
claude_desktop_config.json (Claude Desktop)
{
  "mcpServers": {
    "lumamcp": {
      "command": "python",
      "args": ["-m", "pip"],
      "env": {
        "ACEDATACLOUD_API_TOKEN": "<acedatacloud_api_token>"
      }
    }
  }
}
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.
💡 Install first: pip install mcp-luma
Detected environment variables
ACEDATACLOUD_API_TOKEN
Use cases

MCP Servers overview

# LumaMCP

<!-- mcp-name: io.github.AceDataCloud/mcp-luma -->

[![PyPI version](https://img.shields.io/pypi/v/mcp-luma.svg)](https://pypi.org/project/mcp-luma/)
[![PyPI downloads](https://img.shields.io/pypi/dm/mcp-luma.svg)](https://pypi.org/project/mcp-luma/)
[![Python 3.10+](https://img.shields.io/badge/python-3.10+-blue.svg)](https://www.python.org/downloads/)
[![License: MIT](https://img.shields.io/badge/License-MIT-yellow.svg)](https://opensource.org/licenses/MIT)
[![MCP](https://img.shields.io/badge/MCP-Compatible-green.svg)](https://modelcontextprotocol.io)

A [Model Context Protocol (MCP)](https://modelcontextprotocol.io) server for AI video generation using [Luma Dream Machine](https://lumalabs.ai/dream-machine) through the [AceDataCloud API](https://platform.acedata.cloud?utm_source=github&utm_medium=referral&utm_campaign=evergreen&utm_content=luma_mcp_readme_platform).

Generate AI videos directly from Claude, VS Code, or any MCP-compatible client.

## Features

- **Text to Video** - Create AI-generated videos from text prompts
- **Image to Video** - Animate images with start/end frame control
- **Video Extension** - Extend existing videos with additional content
- **Multiple Aspect Ratios** - Support for 16:9, 9:16, 1:1, and more
- **Loop Videos** - Create seamlessly looping animations
- **Clarity Enhancement** - Optional video quality enhancement
- **Task Tracking** - Monitor generation progress and retrieve results

## Tool Reference

| Tool | Description |
|------|-------------|
| `luma_generate_video` | Generate AI video from a text prompt using Luma Dream Machine. |
| `luma_generate_video_from_image` | Generate AI video using reference images as start and/or end frames. |
| `luma_extend_video` | Extend an existing video with additional content. |
| `luma_extend_video_from_url` | Extend an existing video using its URL. |
| `luma_get_task` | Query the status and result of a video generation task. |
| `luma_get_tasks_batch` | Query multiple video generation tasks at once. |
| `luma_list_aspect_ratios` | List all available aspect ratios for Luma video generation. |
| `luma_list_actions` | List all available Luma API actions and corresponding tools. |

## Connect: hosted OAuth, API token, or local stdio

The hosted endpoint is `https://luma.mcp.acedata.cloud/mcp`. Choose one route for the MCP client:

| Route | When to use it | Credential setup |
|---|---|---|
| Hosted OAuth | The client supports remote MCP OAuth | Add only the URL, then sign in to AceDataCloud and approve access. No token needs to be pasted into client configuration. |
| Hosted API token | The client cannot finish OAuth, or you need an explicit integration credential | Send an AceDataCloud API token in the `Authorization: Bearer …` header. Keep it in a local secret store or environment variable. |
| Local stdio | The client runs a local MCP process | Install `mcp-luma` and pass `ACEDATACLOUD_API_TOKEN` to that process. It still calls the AceDataCloud API. |

The hosted service advertises OAuth metadata and Dynamic Client Registration (DCR). **DCR registers the client application; it is not an API key.** OAuth signs you in and the client sends the resulting Bearer token; it may reuse or create an API credential for the account. Browser sign-in still requires an AceDataCloud account. The hosted service can be metered: review [current service documentation](https://platform.acedata.cloud/documents/luma-mcp?utm_source=github&utm_medium=referral&utm_campaign=evergreen&utm_content=luma_mcp_readme_quick_start) and displayed pricing before a real operation. Do not configure both an OAuth login and a fixed `Authorization` header for the same server.

### Hosted OAuth examples

- **Claude and Claude Desktop chat:** Add a remote custom connector in `Customize → Connectors → Add custom connector`, enter `https://luma.mcp.acedata.cloud/mcp`, select sign-in, and choose **Register automatically** if Claude asks how to register its OAuth client. Complete consent. Claude Desktop's local `claude_desktop_config.json` is a separate setup. [Claude connector guide](https://support.claude.com/en/articles/11175166-get-started-with-custom-connectors-using-remote-mcp).
- **Claude Code:** `claude mcp add --transport http --scope user luma https://luma.mcp.acedata.cloud/mcp`, then `claude mcp login luma`. Check `/mcp`. [Claude Code MCP guide](https://code.claude.com/docs/en/mcp).
- **Cursor:** Add a remote server with only `https://luma.mcp.acedata.cloud/mcp`. For a project, merge the entry below into `<project>/.cursor/mcp.json`; for personal use, use `~/.cursor/mcp.json`. [Cursor MCP guide](https://cursor.com/docs/mcp).
- **VS Code / Copilot:** Run **MCP: Add Server**, select HTTP, enter `https://luma.mcp.acedata.cloud/mcp`, then finish the browser sign-in. New portable workspace configs use `<project>/.mcp.json`; the VS Code-specific format below uses `<project>/.vscode/mcp.json` or the user profile. Check **MCP: List Servers**. [VS Code MCP setup](https://code.visualstudio.com/docs/agent-customization/mcp-servers).
- **Codex:** `codex mcp add luma --url https://luma.mcp.acedata.cloud/mcp`, then `codex mcp login luma`. Its user settings are in `~/.codex/config.toml`. [Official Codex MCP guide](https://developers.openai.com/codex/mcp/).

Cursor project config (OAuth):

```json
{
  "mcpServers": {
    "luma": {"url": "https://luma.mcp.acedata.cloud/mcp"}
  }
}
```

VS Code-specific workspace config (OAuth):

```json
{
  "servers": {
    "luma": {"type": "http", "url": "https://luma.mcp.acedata.cloud/mcp"}
  }
}
```

### Hosted API token

Sign in at [AceDataCloud Platform](https://platform.acedata.cloud?utm_source=github&utm_medium=referral&utm_campaign=evergreen&utm_content=luma_mcp_readme_platform), open the [service page](https://platform.acedata.cloud/documents/luma-mcp?utm_source=github&utm_medium=referral&utm_campaign=evergreen&utm_content=luma_mcp_readme_quick_start), and obtain an API credential. A fixed Bearer header is useful when your client lacks OAuth; an invalid header does not fall back to OAuth in Claude Code. The header value is sensitive, so keep it out of committed files and screenshots.

For Claude Code, the shell expands the token when you add the server; treat the saved user MCP config as a secret:

```bash
export ACEDATACLOUD_API_TOKEN='YOUR_API_TOKEN'
claude mcp add --transport http --scope user luma https://luma.mcp.acedata.cloud/mcp \
  --header "Authorization: Bearer $ACEDATACLOUD_API_TOKEN"
```

For a Claude Code project config, put a variable reference in `<project>/.mcp.json` and set that variable in the environment that launches Claude Code:

```json
{
  "mcpServers": {
    "luma": {
      "type": "http",
      "url": "https://luma.mcp.acedata.cloud/mcp",
      "headers": {"Authorization": "Bearer ${ACEDATACLOUD_API_TOKEN}"}
    }
  }
}
```

Cursor uses a different environment-variable syntax in `~/.cursor/mcp.json` or an uncommitted project config:

```json
{
  "mcpServers": {
    "luma": {
      "url": "https://luma.mcp.acedata.cloud/mcp",
      "headers": {"Authorization": "Bearer ${env:ACEDATACLOUD_API_TOKEN}"}
    }
  }
}
```

In VS Code, run **MCP: Open User Configuration** and merge this server plus its masked input; `${input:...}` is for VS Code's user/workspace format and is not portable to the Agent Host `.mcp.json` format:

```json
{
  "inputs": [
    {"id": "acedata-luma-token", "type": "promptString", "description": "AceDataCloud API token", "password": true}
  ],
  "servers": {
    "luma": {
      "type": "http",
      "url": "https://luma.mcp.acedata.cloud/mcp",
      "headers": {"Authorization": "Bearer ${input:acedata-luma-token}"}
    }
  }
}
```

For **Cline**, use its MCP configuration UI or CLI file `~/.cline/data/settings/cline_mcp_settings.json`; its remote transport value is `streamableHttp`. For **JetBrains AI Assistant**, add a remote URL from **Settings → Tools → AI Assistant → Model Context Protocol (MCP)**. For **Zed**, use a `context_servers` entry with the URL only for OAuth or add a local Bearer header. These clients have different configuration schemas; follow their current UI rather than copying another client's JSON. [Cline](https://docs.cline.bot/mcp/mcp-overview) · [JetBrains](https://www.jetbrains.com/help/ai-assistant/mcp.html) · [Zed](https://zed.dev/docs/ai/mcp).

### Local stdio

Install the package and give the local process an API token:

```bash
python -m pip install mcp-luma
export ACEDATACLOUD_API_TOKEN='YOUR_API_TOKEN'
mcp-luma
```

For Claude Desktop local MCP, merge this entry into the file opened by its developer settings (`~/Library/Application Support/Claude/claude_desktop_config.json` on macOS). `uvx` requires [uv](https://docs.astral.sh/uv/) on `PATH`:

```json
{
  "mcpServers": {
    "luma": {
      "command": "uvx",
      "args": ["mcp-luma"],
      "env": {"ACEDATACLOUD_API_TOKEN": "YOUR_API_TOKEN"}
    }
  }
}
```

Keep this user-level file private. Self-hosted HTTP uses `mcp-luma --transport http --port 8000`; expose it only with suitable network and TLS controls. Local execution still calls the AceDataCloud API.

### Check before using the service

1. `https://luma.mcp.acedata.cloud/health` returning `{"status":"ok"}` checks endpoint reachability only.
2. Confirm that the MCP client loads tools. `luma_list_actions` is a reference tool; it does not verify downstream API access or balance.
3. If you need a full API check, call `luma_generate_video` with your own valid input after reviewing [current service documentation](https://platform.acedata.cloud/documents/luma-mcp?utm_source=github&utm_medium=referral&utm_campaign=evergreen&utm_content=luma_mcp_readme_quick_start) and displayed pricing. If the result contains a task ID, call `luma_get_task` on that same ID until terminal success or failure. Do not resubmit the operation just to check progress.

For **401**, check which auth route the client used and whether the token or OAuth session is valid. A **403** may mean
ai-videodeveloper-toolsluma-aimcp-servermodel-context-protocolvideo-generation

What people ask about LumaMCP

What is AceDataCloud/LumaMCP?

+

AceDataCloud/LumaMCP is mcp servers for the Claude AI ecosystem. MCP server for Luma AI video generation via Ace Data Cloud. It has 0 GitHub stars and its last recorded update is dated 2026-10-07.

How do I install LumaMCP?

+

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

Is AceDataCloud/LumaMCP safe to use?

+

Our security agent has analyzed AceDataCloud/LumaMCP and assigned a Trust Score of 95/100 (tier: Verified). See the full breakdown of passed checks and flags on this page.

Who maintains AceDataCloud/LumaMCP?

+

AceDataCloud/LumaMCP is maintained by AceDataCloud. The last recorded GitHub activity is dated 2026-10-07, with 8 open issues.

Are there alternatives to LumaMCP?

+

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

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