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Dr. Paul Lessard - Categorical/Structured Deep Learning

Machine Learning Street Talk (MLST)

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Unlocking Complexity in Neural Networks

This chapter explores the intricate relationship between category theory and neural networks, highlighting how advanced mathematical frameworks can enhance understanding and effectiveness in neural architectures. The discussion emphasizes the connection between data, algorithms, and problem-solving, challenging traditional concepts of learning in AI. Additionally, the chapter delves into the philosophical implications of syntax versus semantics, advocating for a more graphical approach to understanding complex structures in programming and mathematics.

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