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#24 Significantly advancing LLMs with RAG (Google's Gemini 2.0, Deep Research, notebookLM)

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Manage episode 460336033 series 3585389
内容由Dev and Doc提供。所有播客内容(包括剧集、图形和播客描述)均由 Dev and Doc 或其播客平台合作伙伴直接上传和提供。如果您认为有人在未经您许可的情况下使用您的受版权保护的作品,您可以按照此处概述的流程进行操作https://zh.player.fm/legal

Dev and Doc - Latest News

Dev and Doc - Latest News

It's 2025, Dev and Doc cover the latest news including Google's deep research and notebook LM, DeepMind's Promptbreeder, and Anthropic's new RAG approach. We also go through what retrieval augmented generation (RAG) is, and how this technique is advancing LLM performance.

👋 Hey! If you are enjoying our conversations, reach out, share your thoughts and journey with us. Don't forget to subscribe whilst you're here :)

Meet the Team

  • 👨🏻‍⚕️ Doc - Dr. Joshua Au Yeung - LinkedIn
  • 🤖 Dev - Zeljko Kraljevic - Twitter

Where to Follow Us

Contact Us

📧 For enquiries - [email protected]

Credits

  • 🎞️ Editor - Dragan Kraljević - Instagram
  • 🎨 Brand Design and Art Direction - Ana Grigorovici - Behance

Episode Timeline

  • 00:00 Highlights
  • 00:53 News - Notebook LM, OpenAI 12 days of Christmas
  • 07:44 Change in the meta - post-training
  • 11:34 Optimizing prompts with DeepMind Promptbreeder
  • 13:20 Is OpenAI losing their lead against Google
  • 16:45 Deep research vs Perplexity
  • 24:18 AIME and oncology
  • 26:00 Deep research results
  • 30:20 RAG intro
  • 33:14 Second pass RAG
  • 36:20 RAG didn't take off
  • 38:40 Wikichat
  • 39:16 How do we improve on RAG?
  • 41:11 Semantic/topic chunking, cross-encoders, agentic RAG
  • 51:15 Google’s Problem Decomposition
  • 53:32 Anthropic’s Contextual Retrieval Processing
  • 56:07 Summary and wrap up

References

  continue reading

25集单集

Artwork
icon分享
 
Manage episode 460336033 series 3585389
内容由Dev and Doc提供。所有播客内容(包括剧集、图形和播客描述)均由 Dev and Doc 或其播客平台合作伙伴直接上传和提供。如果您认为有人在未经您许可的情况下使用您的受版权保护的作品,您可以按照此处概述的流程进行操作https://zh.player.fm/legal

Dev and Doc - Latest News

Dev and Doc - Latest News

It's 2025, Dev and Doc cover the latest news including Google's deep research and notebook LM, DeepMind's Promptbreeder, and Anthropic's new RAG approach. We also go through what retrieval augmented generation (RAG) is, and how this technique is advancing LLM performance.

👋 Hey! If you are enjoying our conversations, reach out, share your thoughts and journey with us. Don't forget to subscribe whilst you're here :)

Meet the Team

  • 👨🏻‍⚕️ Doc - Dr. Joshua Au Yeung - LinkedIn
  • 🤖 Dev - Zeljko Kraljevic - Twitter

Where to Follow Us

Contact Us

📧 For enquiries - [email protected]

Credits

  • 🎞️ Editor - Dragan Kraljević - Instagram
  • 🎨 Brand Design and Art Direction - Ana Grigorovici - Behance

Episode Timeline

  • 00:00 Highlights
  • 00:53 News - Notebook LM, OpenAI 12 days of Christmas
  • 07:44 Change in the meta - post-training
  • 11:34 Optimizing prompts with DeepMind Promptbreeder
  • 13:20 Is OpenAI losing their lead against Google
  • 16:45 Deep research vs Perplexity
  • 24:18 AIME and oncology
  • 26:00 Deep research results
  • 30:20 RAG intro
  • 33:14 Second pass RAG
  • 36:20 RAG didn't take off
  • 38:40 Wikichat
  • 39:16 How do we improve on RAG?
  • 41:11 Semantic/topic chunking, cross-encoders, agentic RAG
  • 51:15 Google’s Problem Decomposition
  • 53:32 Anthropic’s Contextual Retrieval Processing
  • 56:07 Summary and wrap up

References

  continue reading

25集单集

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