DINO-X-MCP

Official DINO-X Model Context Protocol (MCP) server that empowers LLMs with real-world visual perception through image object detection, localization, and captioning APIs.

109
Stars
10
Forks
TypeScript
语言
2026/8/23
添加时间

⚠️ 第三方软件声明

本 Skill 为第三方开源软件,独立托管于 GitHub。SkillTip 仅为信息目录,不控制或维护底层仓库。所显示的安全检查为自动化且范围有限,安装前请自行审查源码。

阅读服务条款

安装

添加到你的 Claude Code skills 目录:

# Add to your Claude Code skills
git clone https://github.com/IDEA-Research/DINO-X-MCP

快速入门

使用 DINO-X-MCP 等 Skills 的指南。

安全报告

已验证

上次扫描:—

{
  "status": "PASSED",
  "issues": []
}

README.md

DINO-X MCP Server

License npm version npm downloads PRs Welcome MCP Badge GitHub stars

English | 中文

DINO-X Official MCP Server — powered by the DINO-X and Grounding DINO models — brings fine-grained object detection and image understanding to your multimodal applications.

Your browser does not support the video tag.

Why DINO-X MCP?

With DINO-X MCP, you can:

  • Fine-Grained Understanding: Full image detection, object detection, and region-level descriptions.

  • Structured Outputs: Get object categories, counts, locations, and attributes for VQA and multi-step reasoning tasks.

  • Composable: Works seamlessly with other MCP servers to build end-to-end visual agents or automation pipelines.

Transport Modes

DINO-X MCP supports two transport modes:

FeatureSTDIO (default)Streamable HTTP
RuntimeLocalLocal or Cloud
TransportStandard I/OHTTP (streaming responses)
Input sourcefile:// and https://https:// only
VisualizationSupported (saves annotated images locally)Not supported (for now)

Quick Start

1. Prepare an MCP client

Any MCP-compatible client works, e.g.:

2. Get your API key

Apply on the DINO-X platform: Request API Key (new users get free quota).

3. Configure MCP

Option A: Official Hosted Streamable HTTP (Recommended)

Add to your MCP client config and replace with your API key:

{
  "mcpServers": {
    "dinox-mcp": {
      "url": "https://mcp.deepdataspace.com/mcp?key=your-api-key"
    }
  }
}

Option B: Use the NPM package locally (STDIO)

Install Node.js first

  • Download the installer from nodejs.org

  • Or use command:

# macOS / Linux
curl -o- https://raw.githubusercontent.com/nvm-sh/nvm/v0.40.1/install.sh | bash
# or
wget -qO- https://raw.githubusercontent.com/nvm-sh/nvm/v0.40.1/install.sh | bash

# load nvm into current shell (choose the one you use)
source ~/.bashrc || true
source ~/.zshrc  || true

# install and use LTS Node.js
nvm install --lts
nvm use --lts

# Windows (one of the following)
winget install OpenJS.NodeJS.LTS
# or with Chocolatey (in admin PowerShell)
iwr -useb https://raw.githubusercontent.com/chocolatey/chocolatey/master/chocolateyInstall/InstallChocolatey.ps1 | iex
choco install nodejs-lts -y

Configure your MCP client:

{
  "mcpServers": {
    "dinox-mcp": {
      "command": "npx",
      "args": ["-y", "@deepdataspace/dinox-mcp"],
      "env": {
        "DINOX_API_KEY": "your-api-key-here",
        "IMAGE_STORAGE_DIRECTORY": "/path/to/your/image/directory"
      }
    }
  }
}

Note: Replace your-api-key-here with your real key.

Option C: Run from source locally

Make sure Node.js is installed (see Option B), then:

# clone
git clone https://github.com/IDEA-Research/DINO-X-MCP.git
cd DINO-X-MCP

# install deps
npm install

# build
npm run build

Configure your MCP client:

{
  "mcpServers": {
    "dinox-mcp": {
      "command": "node",
      "args": ["/path/to/DINO-X-MCP/build/index.js"],
      "env": {
        "DINOX_API_KEY": "your-api-key-here",
        "IMAGE_STORAGE_DIRECTORY": "/path/to/your/image/directory"
      }
    }
  }
}

CLI Flags & Environment Variables

  • Common flags

    • --http: start in Streamable HTTP mode (otherwise STDIO by default)
    • --stdio: force STDIO mode
    • --dinox-api-key=...: set API key
    • --enable-client-key: allow API key via URL ?key= (Streamable HTTP only)
    • --port=8080: HTTP port (default 3020)
  • Environment variables

    • DINOX_API_KEY (required/conditionally required): DINO-X platform API key
    • IMAGE_STORAGE_DIRECTORY (optional, STDIO): directory to save annotated images
    • AUTH_TOKEN (optional, HTTP): if set, client must send Authorization: Bearer <token>

    Examples:

# STDIO (local)
node build/index.js --dinox-api-key=your-api-key

# Streamable HTTP (server provides a shared API key)
node build/index.js --http --dinox-api-key=your-api-key

# Streamable HTTP (custom port)
node build/index.js --http --dinox-api-key=your-api-key --port=8080

# Streamable HTTP (require client-provided API key via URL)
node build/index.js --http --enable-client-key

Client config when using ?key=:

{
  "mcpServers": {
    "dinox-mcp": {
      "url": "http://localhost:3020/mcp?key=your-api-key"
    }
  }
}

Using AUTH_TOKEN with a gateway that injects Authorization: Bearer <token>:

AUTH_TOKEN=my-token node build/index.js --http --enable-client-key

Client example with supergateway:

{
  "mcpServers": {
    "dinox-mcp": {
      "command": "npx",
      "args": [
        "-y",
        "supergateway",
        "--streamableHttp",
        "http://localhost:3020/mcp?key=your-api-key",
        "--oauth2Bearer",
        "my-token"
      ]
    }
  }
}

Tools

CapabilityTool IDTransportInputOutput
Full-scene object detectiondetect-all-objectsSTDIO / HTTPImage URLCategory + bbox + (optional) captions
Text-prompted object detectiondetect-objects-by-textSTDIO / HTTPImage URL + English nouns (dot-separated for multiple, e.g., person.car)Target object bbox + (optional) captions
Human pose estimationdetect-human-pose-keypointsSTDIO / HTTPImage URL17 keypoints + bbox + (optional) captions
Visualizationvisualize-detection-resultSTDIO onlyImage URL + detection results arrayLocal path to annotated image

🎬 Use Cases

🎯 Scenario📝 Input✨ Output
Detection & Localization💬 Prompt:
Detect and visualize the
fire areas in the forest

🖼️ Input Image:
1-1
1-2
Object Counting💬 Prompt:
Please analyze this
warehouse image, detect
all the cardboard boxes,
count the total number

🖼️ Input Image:
2-1
2-2
Feature Detection💬 Prompt:
Find all red cars
in the image

🖼️ Input Image:
4-1
4-2
Attribute Reasoning💬 Prompt:
Find the tallest person
in the image, describe
their clothing

🖼️ Input Image:
5-1
5-2
Full Scene Detection💬 Prompt:
Find the fruit with
the highest vitamin C
content in the image

🖼️ Input Image:
6-1
6-3

Answer: Kiwi fruit (93mg/100g)
Pose Analysis💬 Prompt:
Please analyze what
yoga pose this is

🖼️ Input Image:
3-1
3-3

FAQ

  • Supported image sources?
    • STDIO: file:// and https://
    • Streamable HTTP: https:// only
  • Supported image formats?
    • jpg, jpeg, webp, png

Development & Debugging

Use watch mode to auto-rebuild during development:

npm run watch

Use MCP Inspector for debugging:

npm run inspector

License

Apache License 2.0

常见问题

What is DINO-X-MCP?

DINO-X-MCP is an open-source mcp servers skill for AI coding assistants such as Claude Code, Codex CLI, and ChatGPT, built by IDEA-Research. Official DINO-X Model Context Protocol (MCP) server that empowers LLMs with real-world visual perception through image object detection, localization, and captioning APIs. It has 109 GitHub stars.

Is DINO-X-MCP safe to use?

DINO-X-MCP returned warnings in SkillsLLM's automated security scan. It has no critical vulnerabilities, but review the flagged issues in the Security Report section before adding it to your workflow.

How do I install DINO-X-MCP?

Clone the repository with "git clone https://github.com/IDEA-Research/DINO-X-MCP" and add it to your Claude Code skills directory (see the Installation section above).

What programming language is DINO-X-MCP written in?

DINO-X-MCP is primarily written in TypeScript. It is open-source under IDEA-Research on GitHub, so you can review or fork the full source.

Are there alternatives to DINO-X-MCP?

Yes. SkillsLLM lists many other MCP Servers skills you can browse and compare side by side. Open the MCP Servers category from the badge at the top of this page, or use the Related Skills and comparison links further down to weigh DINO-X-MCP against similar tools.

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