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David Pfau: Manifold Factorization and AI for Science

The Gradient: Perspectives on AI

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Intersection of Neuroscience and Deep Learning in Scientific Research

The chapter explores the speaker's journey from machine learning for neuroscience to using deep learning in scientific applications, discussing the evolution of fitting neural networks to brain data and the limitations of deep learning in understanding brain function. It showcases advancements in AI for science, such as using deep neural networks for solving complex equations and developing AI assistants for scientific tasks, while highlighting the challenges of creating theories to explain brain function in relation to modern machine learning systems.

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