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Scaling Multi-Modal Generative AI with Luke Zettlemoyer - #650
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Sam Charrington

· 39 Minutes

PodcastThe TWIML AI Podcast

Scaling Multi-Modal Generative AI with Luke Zettlemoyer - #650

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Today we’re joined by Luke Zettlemoyer, professor at University of Washington and a research manager at Meta. In our conversation with Luke, we cover multimodal generative AI, the effect of data on models, and the significance of open source and open science. We explore the grounding problem, the need for visual grounding and embodiment in text-based models, the advantages of discretization tokenization in image generation, and his paper Scaling Laws for Generative Mixed-Modal Language Models, which focuses on simultaneously training LLMs on various modalities. Additionally, we cover his papers on Self-Alignment with Instruction Backtranslation, and LIMA: Less Is More for Alignment.

The complete show notes for this episode can be found at twimlai.com/go/650.

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This story was published by The TWIML AI Podcast and written by Sam Charrington. SyncAI.news shows a preview; the complete article is on the publisher's site.

Read the full story on twimlai.com

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