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Source channel @TossLabChannel · Post #10 · 10月16日

#Task#Scrip#定时#签到#脚本猫 #ScriptCat -脚本猫 脚本猫,一个可以执行用户脚本的浏览器扩展,万物皆可脚本化,让你的浏览器可以做更多的事情! 安装脚本 可以从各大用户脚本市场获取脚本进行安装,脚本猫所支持的后台脚本专门建立了一个市场:后台脚本. 安装方式与油猴一样,同时也是兼容绝大部分油猴脚本的 开发文档 尽力完善中,因为是参考油猴的设计,与油猴脚本相通的地方很多,就算你使用其它油猴管理器,你也可以参考脚本猫的文档来开发! 安装扩展 我们已经上架了扩展商店,如果你无法访问商店内容,请在release中下载 zip 包手动进行安装 扩展商城 • Chrome 商店 • Edge 商店 • FireFox 商店 交流 • Telegram • 油猴中文网 📢 群聊:@TossIPhone 🎈 频道:@TossIChannel 每天推送有用有趣的内容,包括但不限于#Emby#VPS#APP#Crack#Task#Lottery#Mooch#AppleNews#还有每天都有的抽奖活动,加入我们,一起搞机,一起折腾!

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GitHub Trends

@githubtrending · Post #15076 · 2025/08/19 13:00

#python#aws#mcp#mcp_client#mcp_clients#mcp_host#mcp_server#mcp_servers#mcp_tools#modelcontextprotocol AWS MCP Servers use the Model Context Protocol (MCP), an open standard that connects AI tools with AWS data and services in a simple, secure way. These servers improve AI responses by providing up-to-date AWS documentation, best practices, and workflow automation for cloud development, infrastructure, and operations. You can run MCP servers locally for development or use AWS-managed remote servers for easy access and scalability. MCP servers support many AWS services like Lambda, DynamoDB, EKS, and more, helping you build, manage, and optimize AWS resources efficiently with AI assistance. Installation is easy with one-click options for popular tools like VS Code and Cursor. This makes cloud development faster, more accurate, and cost-effective. https://github.com/awslabs/mcp

GitHub Trends

@githubtrending · Post #15008 · 2025/07/31 09:30

#python#csharp#java#javascript#javascript_applications#mcp#mcp_client#mcp_security#mcp_server#model#model_context_protocol#modelcontextprotocol#python#typescript You can learn the Model Context Protocol (MCP), a new standard for connecting AI models with applications, through a free, open-source curriculum that includes hands-on coding examples in C#, Java, JavaScript, Python, and TypeScript. The curriculum covers basics, security, building servers and clients, advanced topics, and best practices, with multi-language support and community help via Discord. You can also join MCP Dev Days, a free online event for deep technical learning and networking. This resource helps you quickly gain practical skills to build and integrate AI tools effectively, boosting your development capabilities in AI workflows. https://github.com/microsoft/mcp-for-beginners

GitHub Trends

@githubtrending · Post #14896 · 2025/07/02 12:30

#python#ai#authentication#authorization#claude#cursor#fastapi#llm#mcp#mcp_server#mcp_servers#modelcontextprotocol#openapi#windsurf FastAPI-MCP is a tool that lets you easily turn your FastAPI web API endpoints into Model Context Protocol (MCP) tools, which AI agents can use directly. It requires almost no setup—just connect it to your FastAPI app, and it automatically preserves your request/response data models and documentation. It also includes built-in authentication using your existing FastAPI security methods. You can run the MCP server inside your app or separately, and it communicates efficiently using FastAPI’s ASGI interface. This makes it simple to integrate AI capabilities with your existing FastAPI services without rewriting code, saving you time and effort while keeping your API secure and well-documented[1][5]. https://github.com/tadata-org/fastapi_mcp