Artificial Intelligence & Large Language Models: Oxford Lecture — #35

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This week's episode is based on a lecture Steve gave to an audience of theoretical physicists at Oxford University. The topic is artificial intelligence and large language models. Lecture slides: https://docs.google.com/presentation/d/1xiMeeRMVpB-_W66BnyRyUAtrLlUwQNlndqbVcguKK8U/edit?usp=sharingChapter markers:0:00 Introduction2:31 Deep Learning and Neural Networks; history and mathematical results21:15 Embedding space, word vectors31:53 Next word prediction as objective function34:08 Attention is all you need37:09 Transformer architecture44:54 The geometry of thought52:57 What can LLMs do? Sparks of AGI1:02:41 Hallucination  1:14:40 SuperFocus testing and examples1:18:40 AI landscape, AGI, and the futureMusic used with permission from Blade Runner Blues Livestream improvisation by State Azure.--Steve Hsu is Professor of Theoretical Physics and of Computational Mathematics, Science, and Engineering at Michigan State University. Previously, he was Senior Vice President for Research and Innovation at MSU and Director of the Institute of Theoretical Science at the University of Oregon. Hsu is a startup founder (Superfocus.ai, SafeWeb, Genomic Prediction) and advisor to venture capital and other investment firms. He was educated at Caltech and Berkeley, was a Harvard Junior Fellow, and has held faculty positions at Yale, the University of Oregon, and MSU.Please send any questions or suggestions to manifold1podcast@gmail.com or Steve on Twitter @hsu_steve.

Artificial Intelligence & Large Language Models: Oxford Lecture — #35

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Artificial Intelligence & Large Language Models: Oxford Lecture — #35
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