Image Generation Server

Generate images from text prompts using Replicate's flux-schnell model.

Installation

Installing for Claude Desktop

Manual Configuration Required

This MCP server requires manual configuration. Run the command below to open your configuration file:

npx mcpbar@latest edit -c claude

This will open your configuration file where you can add the Image Generation Server MCP server manually.

Image Generation MCP Server

An MCP (Model Context Protocol) server implementation for generating images using Replicate's black-forest-labs/flux-schnell model.

Ideally to be used with Cursor's MCP feature, but can be used with any MCP client.

Features

  • Generate images from text prompts
  • Configurable image parameters (resolution, aspect ratio, quality)
  • Save generated images to specified directory
  • Full MCP protocol compliance
  • Error handling and validation

Prerequisites

  • Node.js 16+
  • Replicate API token
  • TypeScript SDK for MCP

Setup

  1. Clone the repository

  2. Install dependencies:

    npm install
    
  3. Add your Replicate API token directly in the code at src/imageService.ts by updating the apiToken constant:

    // No environment variables are used since they can't be easily set in cursor
    const apiToken = "your-replicate-api-token-here";
    

    Note: If using with Claude, you can create a .env file in the root directory and set your API token there:

    REPLICATE_API_TOKEN=your-replicate-api-token-here
    

    Then build the project:

    npm run build
    

Usage

To use with cursor:

  1. Go to Settings
  2. Select Features
  3. Scroll down to "MCP Servers"
  4. Click "Add new MCP Server"
  5. Set Type to "Command"
  6. Set Command to: node ./path/to/dist/server.js

API Parameters

ParameterTypeRequiredDefaultDescription
promptstringYes-Text prompt for image generation
output_dirstringYes-Server directory path to save generated images
go_fastbooleanNofalseEnable faster generation mode
megapixelsstringNo"1"Resolution quality ("1", "2", "4")
num_outputsnumberNo1Number of images to generate (1-4)
aspect_ratiostringNo"1:1"Aspect ratio ("1:1", "4:3", "16:9")
output_formatstringNo"webp"Image format ("webp", "png", "jpeg")
output_qualitynumberNo80Compression quality (1-100)
num_inference_stepsnumberNo4Number of denoising steps (4-20)

Example Request

{
  "prompt": "black forest gateau cake spelling out 'FLUX SCHNELL'",
  "output_dir": "/var/output/images",
  "filename": "black_forest_cake",
  "output_format": "webp"
  "go_fast": true,
  "megapixels": "1",
  "num_outputs": 2,
  "aspect_ratio": "1:1"
}

Example Response

{
  "image_paths": [
    "/var/output/images/output_0.webp",
    "/var/output/images/output_1.webp"
  ],
  "metadata": {
    "model": "black-forest-labs/flux-schnell",
    "inference_time_ms": 2847
  }
}

Error Handling

The server handles the following error types:

  • Validation errors (invalid parameters)
  • API errors (Replicate API issues)
  • Server errors (filesystem, permissions)
  • Unknown errors (unexpected issues)

Each error response includes:

  • Error code
  • Human-readable message
  • Detailed error information

License

ISC

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