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Chatgpt

@automateyournetwork

关于 Chatgpt

暂无概览

基本信息

分类

AI 与智能体

传输方式

stdio

发布者

automateyournetwork

提交者

John Capobianco

配置

使用下面的配置,将此服务器添加到你的 MCP 客户端。

{
  "mcpServers": {
    "chatgpt": {
      "command": "python3",
      "args": [
        "server.py",
        "--oneshot"
      ],
      "env": {
        "OPENAI_API_KEY": "<YOUR_OPENAI_API_KEY>"
      }
    }
  }
}

工具

未检测到工具

工具是从 README 中自动提取的。维护者可以在 ## Tools 标题下列出工具,即可填充这部分内容。

概览

What is Chatgpt?

This MCP (Model Context Protocol) stdio server forwards prompts to OpenAI’s ChatGPT (GPT-4o) for advanced summarization, analysis, and reasoning. It is designed to run inside LangGraph-based assistants.

How to use Chatgpt?

Build and run the Docker container with your OPENAI_API_KEY, or run the Python script directly using the --oneshot flag. Configure the server via an mcpServers JSON block, setting the command to python3 server.py --oneshot and providing the API key as an environment variable. The only exposed tool is ask_chatgpt, which takes a content string.

Key features of Chatgpt

  • Exposes a single tool: ask_chatgpt
  • Sends text to GPT-4o for external reasoning
  • Supports one-shot stdin/stdout mode
  • Deployable via Docker or Python directly
  • API key injected securely through environment variables

Use cases of Chatgpt

  • Summarize long documents
  • Analyze configuration files
  • Compare multiple options
  • Perform advanced natural language reasoning

FAQ from Chatgpt

What tool does this server expose?

It exposes the ask_chatgpt tool, which forwards the provided content to GPT-4o for analysis or summarization.

How do I provide my OpenAI API key?

Set the OPENAI_API_KEY environment variable, either in a .env file (auto‑loaded by python‑dotenv) or by exporting it directly.

Can I test the server locally?

Yes, use the --oneshot flag and send a JSON‑formatted request via echo, as shown in the README manual test example.

How do I integrate Chatgpt with LangGraph?

Configure the server with command python3, args ["server.py", "--oneshot"], and the OPENAI_API_KEY in the environment block of your LangGraph pipeline.

What dependencies does it require?

The server depends on openai, requests, and python-dotenv; these are installed during the Docker build.

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