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The Fractured Entangled Representation Hypothesis (Intro)

Machine Learning Street Talk (MLST)

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Redefining Neural Network Architectures

This chapter explores the limitations of current large language models and proposes alternative approaches inspired by serendipitous discoveries. It emphasizes new architectural methods in neural networks that enhance intuitive understanding and the capacity for remarkable image generation, highlighting the benefits of modular decomposition and hierarchical representations.

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