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Source channel @TossLabChannel · Post #521 · 1月15日

#青龙更新 青龙 v2.18.1 更新说明 青龙 v2.18.1 发布!本次更新优化功能并修复问题: • 新增功能:内置 QLAPI 增加环境变量和系统通知 API。 • 调整:移除 nedb 和 sentry,不再支持 2.10.x 版本自动迁移。 • 修复:多语言翻译问题改进。 更新方法: • 面板更新:系统设置 -> 其他设置 -> 检查更新 • 容器内更新:执行 ql update • Debian 用户:直接同步更新。 • 宿主机更新:运行命令 docker run --rm -v /var/run/docker.sock:/var/run/docker.sock containrrr/watchtower -cR <容器名> 版本镜像: • 正式版:whyour/qinglong:latest • Python3.10 正式版:whyour/qinglong:python3.10 • Debian 版:whyour/qinglong:debian • Python3.10 Debian 版:whyour/qinglong:debian-python3.10 • NPM 安装:npm i -g @whyour/qinglong 📢 群聊: @TossLab 🎈 频道: @TossLabChannel ❗️ ❗️ ❗️ ❗️ ❗️ ❗️ ❗️ ❗️ 🔘折腾系列频道 - 全面介绍 🔘境外离岸银行教程合集目录 🔘折腾实验室优质Github项目合集

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GitHub Trends

@githubtrending · Post #15295 · 2025/11/11 17:00

#python#ai#faiss#gpt_oss#langchain#llama_index#llm#localstorage#offline_first#ollama#privacy#python#rag#retrieval_augmented_generation#vector_database#vector_search#vectors LEANN is a tiny, powerful vector database that lets you turn your laptop into a personal AI assistant capable of searching millions of documents using 97% less storage than traditional systems without losing accuracy. It works by storing a compact graph and computing embeddings only when needed, saving huge space and keeping your data private on your device. You can search your files, emails, browser history, chat logs, live data from platforms like Slack and Twitter, and even codebases—all locally without cloud costs. This means fast, private, and efficient AI-powered search and retrieval on your own laptop. https://github.com/yichuan-w/LEANN

GitHub Trends

@githubtrending · Post #15168 · 2025/09/25 12:30

#python#ai#context#embedded#faiss#knowledge_base#knowledge_graph#llm#machine_learning#memory#nlp#offline_first#opencv#python#rag#retrieval_augmented_generation#semantic_search#vector_database#video_processing Memvid lets you store millions of text pieces inside a single MP4 video file using QR codes, making your data 50-100 times smaller than usual databases. You can search this video instantly in under 100 milliseconds without needing servers or internet after setup. It works offline, is easy to use with simple Python code, and supports PDFs and chat with your data. The upcoming version 2 will add features like continuous memory updates, shareable capsules, fast local caching, and better video compression, making your AI memory smarter, faster, and more flexible. This means you get a powerful, portable, and efficient way to manage and search huge knowledge bases quickly and easily. https://github.com/Olow304/memvid