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Source channel @olddriverGDstudy · Post #13 · Mar 17

#秀哥语录 2020.12.27【撩妹模板】#撩妹#语录 告诉你们一个小秘密 没事多去逛逛有年轻漂亮老板娘的美甲店 不要问我为什么 小姐姐 我买几瓶指甲油送给喜欢的人 买好付完钱送给老板娘 你就是我喜欢的人 你可以直白的告诉老板娘 其实我已经关注你好久了 第一次见到你 就有种心跳的感觉 我已经好多次想进来了 就是不知道怎么和你搭讪 可是 你的身影实在挥之不去 我今天忍不住了 豁出去了 就想告诉你 我真的好喜欢你 能不能加个好友

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@githubtrending · Post #14826 · 06/12/2025, 01:00 PM

#jupyter_notebook#ai#llm#llms#multi_modal#openai#python#rag Retrieval-Augmented Generation (RAG) is a technique that helps improve the accuracy of large language models by fetching relevant information from databases or documents. This approach ensures that the model's responses are based on up-to-date and accurate data, reducing errors and "hallucinations" where the model might provide false information. For users, RAG offers more reliable and trustworthy responses, allowing them to verify the sources used to generate those responses. This method also saves resources by avoiding the need to retrain models with new data. https://github.com/FareedKhan-dev/all-rag-techniques

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@githubtrending · Post #15536 · 03/03/2026, 12:00 PM

#python#agent#chatbot#large_language_models#llm#llm_agent#mcp#multi_agent#multi_modal#react_agent AgentScope is a simple, production-ready framework to build AI agents fast. Install with `pip install agentscope` (Python 3.10+), then create ReAct agents with tools, memory, voice, human steering, multi-agent workflows, and finetuning in 5 minutes. It supports realtime voice, A2A protocols, RL training, and easy deployment locally, in cloud, or Kubernetes. You benefit by quickly making robust, scalable agents for tasks like games, research, or chats without complex coding, saving time and enabling real-world apps. https://github.com/agentscope-ai/agentscope