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Source channel @githubtrending · Post #14909 · Jul 3

#other#agent#llm#rag Happy-LLM is a free, open-source learning project that helps you deeply understand large language models (LLMs) from basics to advanced training and applications. It teaches you key concepts like NLP, Transformer architecture, pretraining, and how to build and train your own LLaMA2 model step-by-step. You also learn practical skills like fine-tuning and using cutting-edge techniques such as Retrieval-Augmented Generation (RAG) and intelligent agents. This project is ideal if you know some Python and deep learning, and it offers both theory and hands-on code to help you master LLM development and apply it in real-world AI tasks. This can boost your skills and confidence in AI model building and research. https://github.com/datawhalechina/happy-llm

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ALL About RSS

@AboutRss · Post #876 · 11/19/2020, 01:00 AM

FeedIt trainable RSS reader 登陆 iOS APP Store 频道提及过的机器学习型 #RSS阅读器#FeedIt 在其安卓版和线上版后发布了 #iOS 版: https://apps.apple.com/us/app/feedit-rss-reader/id1538541609 发现于 https://twitter.com/RSSCircus/status/1328955086152806401

ALL About RSS

@AboutRss · Post #840 · 10/13/2020, 01:00 AM

FeedIt :利用机器学习进行文章喜好排序的在线 #RSS阅读器 还记得在 Reddit 上看到个贴,说 Ta 唯一不喜欢 RSS 订阅的一点是:阅读器把所有文章一视同仁,不能告诉 Ta 哪个重要、哪个不重要。回帖里自然有人教育道:RSS 订阅的特色就是没有谁帮你决定哪个重要、哪个不重要。 当然,该帖里也提到,除了关键词过滤或给 Feeds 按重要程度分组外,有几家阅读器可以给文章打分,并以分数改变其排序。比如 #TTRSS 的 Scoring 。 现在,更 fancy 的来了。 #FeedIt 让你可以通过给文章以及文章关键词打“赞”和“踩”来用机器学习训练阅读器对你喜好的把握;一段时日之后,就可以让阅读器按你的喜好来给文章排序了。对于那些订阅很多 Feeds 的玩家,说不定也是条路。 官网在此,自带 #Android App : https://feedit.sk/ 发现于 Reddit 。到底是高大上还是本末倒置,欢迎留言讨论。