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local-asset-gen-mcp

Local AI asset generation MCP server: end-to-end text-to-image/audio/speech and image/text-to-3D with Qwen3-TTS, Stable Audio Open, SSD-1B, and TripoSR.

Install / Use

claude mcp add davidemodolo -- npx -y github:davidemodolo/local-asset-gen-mcp

If the server publishes to npm under a different name, use that package instead — check the repo README.

About this skill
🔌

MCP Server

Model Context Protocol server

Quality Score

74/100

Category

Other

Supported Platforms

Claude Code
Claude Desktop

Our assessment of local-asset-gen-mcp

local-asset-gen-mcp scores 74/100 on our quality scale, 96th of 121 Other skills we index.

Its MCP Server is 3.6 KB long, well organised into 11 sections with 4 code examples: a solid amount of guidance for an agent.

It has 3 GitHub stars, so there is little community track record yet; judge it on its content.

Substance
26/30
Structure
20/20
Description
15/15
Adoption
3/20
Freshness
11/15

Maintenance, license and trust

  • The repository was last updated about 6 months ago. That is recent enough to be usable, but agent tooling moves fast, so check the instructions against your agent's current version.
  • Our last check on 2026-09-20 found the source still online.
  • It is released under GPL-3.0, a copyleft license: you can use it, but modified versions you distribute must carry the same license.
  • Its trust signals score 86/100, with 2 cautions from licensing, adoption, age or documentation. These come from repository metadata, not a code audit — read the skill file before letting an agent act on it.

local-asset-gen-mcp compared with similar skills

All 4 of these similar skills score higher than local-asset-gen-mcp; compare them before choosing.

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Frequently asked questions

How do I install local-asset-gen-mcp?
Run claude mcp add davidemodolo -- npx -y github:davidemodolo/local-asset-gen-mcp. The install tabs above show the steps for each supported agent.
Which AI agents does local-asset-gen-mcp work with?
It is written for Claude Code and Claude Desktop, as a MCP Server file. Other agents that read the same format can often use it too.
Is local-asset-gen-mcp safe to use?
It is GPL-3.0-licensed and scores 86/100 on trust signals. Skills are instructions an agent will follow, so read the file before installing it and do not approve commands you do not understand.
Is local-asset-gen-mcp still maintained?
The repository was last updated about 6 months ago. That is recent enough to be usable, but agent tooling moves fast, so check the instructions against your agent's current version.

Local AI Generation MCP Server (local_ai_gen)

This project runs a local MCP (Model Context Protocol) server that exposes tools for:

  1. Text to Image
  2. Text to Music / Audio
  3. Text to Speech
  4. Image/Text to 3D Model

Models Used

  • Image Generation: segmind/SSD-1B A fast, distilled version of SDXL that works well on consumer GPUs.
  • Music Generation: stabilityai/stable-audio-open-1.0 A high-quality open model for generating sound effects, short music tracks, and ambient audio. (Note: Requires accepting license terms)
  • Speech Generation: Qwen/Qwen3-TTS-12Hz-1.7B-CustomVoice A robust, multilingual text-to-speech model.
  • 3D Generation: stabilityai/TripoSR A fast feed-forward model for image-to-3D reconstruction.

Requirements

Complete Setup Guide

1. Preparation and Hugging Face Authenication

The Stable Audio Open model is gated and requires you to accept its license before downloading.

  1. Go to stabilityai/stable-audio-open-1.0 on Hugging Face.
  2. Log in and click to Accept the Terms/License.
  3. Generate a User Access Token in your Hugging Face Settings.
  4. Run the Hugging Face CLI login locally:
    pip install -U "huggingface_hub"
    hf auth
    
    (Paste your token when prompted. You do not need to add it as a git credential).

2. Environment Installation

python -m venv .venv
source .venv/bin/activate
python setup.py

What python setup.py does:

  1. Creates output directories (generated_images, generated_audio, generated_models, models)
  2. Clones third_party/TripoSR if it is missing
  3. Installs everything from requirements.txt
  4. Compiles and installs torchmcubes against your active torch version (needed for 3D generation)
  5. Installs flash-attn.

Run the MCP server

To run the MCP server manually (via standard I/O):

python mcp_server/main.py

Note: The first run of any specific tool will be slower because it has to download the weights for that model into your Hugging Face cache.

Smoke Test

You can run the included smoke test script to verify all models are working correctly:

python smoke_test_generate.py

MCP Tools Exposed

  • generate_image
  • generate_audio
  • generate_speech
  • generate_3d_model
  • health_check

Notes

  • Generated files are written to generated_images, generated_audio, and generated_models by default.
  • For generate_audio and generate_speech, you can override the destination with:
  • tool arg output_dir (highest priority), or
  • env var GENAI_OUTPUT_AUDIO_DIR
  • For generate_image, override destination with tool arg output_dir or env var GENAI_OUTPUT_IMAGE_DIR
  • For generate_3d_model, override destination with tool arg output_dir or env var GENAI_OUTPUT_MODEL_DIR

Using with MCP Clients (Cursor, Claude Desktop, etc.)

To use this server in an MCP-compatible client, add the following to your mcp.json (or the respective MCP configuration file for your client). Make sure to replace <YOUR_PROJECT_PATH> with the absolute path to where you cloned this repository:

{
  "mcpServers": {
    "local_ai_gen": {
      "command": "<YOUR_PROJECT_PATH>/.venv/bin/python",
      "args": [
        "<YOUR_PROJECT_PATH>/mcp_server/main.py"
      ],
      "env": {}
    }
  }
}

Related Skills

View on GitHub
GitHub Stars3
CategoryOther
Updated6mo ago
Forks0

Languages

Python

Trust signals

86/100

From repository metadata: license, adoption, age and documentation. Not a code audit — see the Safety scan above for what the skill file itself contains.

2 low