mcp-cn-commerce
Click on "Deploy Server".
Wait a few minutes for the server to deploy. Once ready, it will show a "Started" state.
In the chat, type
@followed by the MCP server name and your instructions, e.g., "@mcp-cn-commerce帮我查一下拼多多店铺的商品和订单列表,分析一下哪款衬衫卖得最好。"
That's it! The server will respond to your query, and you can continue using it as needed.
Here is a step-by-step guide with screenshots.
基于 MCP 协议的电商数据分析 Agent (mcp-cn-commerce)
本项目是一个基于 Anthropic MCP (Model Context Protocol) 标准架构构建的电商自动化分析智能体(Agent)。 系统通过将大语言模型(LLM)与拼多多/抖店工具链进行解耦对接,实现了利用自然语言驱动工具调用(Tool Calling),完成店铺商品查询、订单分析与经营决断输出。
🌟 核心亮点与工程改进
MCP 标准架构落地:遵循 Model Context Protocol 协议规范,通过 Stdio 管道实现 Client 与 本地 MCP Server 的双向通信。
Mock 代理层设计(鉴权绕过):重写服务端核心
_call响应逻辑,注入规范的电商业务模拟 JSON 数据,无需企业级真实 API 凭证即可实现全流程离线运行与 Agent 链路验证。多客户端与多模型解耦:验证了架构的跨平台兼容性,成功从 Claude Desktop 迁移至 Cherry Studio,并适配 DeepSeek-V3 / R1 大模型,将工具调用成本降低 90% 以上。
Related MCP server: Haravan MCP
🛠️ 技术栈
Protocol: Model Context Protocol (MCP)
Language: Python 3.10+
Dependency Manager:
uvClients Supported: Cherry Studio, Claude Desktop, Cursor
Models Tested: DeepSeek-V3, DeepSeek-R1, Claude 3.5 Sonnet
🚀 快速本地部署
1. 克隆本项目与安装依赖
git clone [https://github.com/你的用户名/mcp-cn-commerce-agent.git](https://github.com/你的用户名/mcp-cn-commerce-agent.git)
cd mcp-cn-commerce-agent
uv sync
2. 在 Cherry Studio 中配置 MCP 服务
在 Cherry Studio 的 设置 -> MCP 服务器 中添加:
名称: mcp-cn-commerce
类型: stdio
命令: uv
参数: run mcp-cn-commerce start pinduoduo
环境变量:
PINDUODUO_CLIENT_ID=mock_client_id
PINDUODUO_CLIENT_SECRET=mock_client_secret
PINDUODUO_ACCESS_TOKEN=mock_access_token
💡 使用示例
在客户端对话框中发送指令:
"帮我查一下拼多多店铺的商品和订单列表,分析一下哪款衬衫卖得最好。"
Agent 智能体执行链路:
识别意图,触发 get_product_list 和 get_order_list 工具。
本地 MCP Server 拦截请求并返回 Mock 结构化数据。
大模型解析 JSON 数据并生成诊断报告。This server cannot be deployed
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