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Untangling Neural Network Mechanisms: Goodfire's Lee Sharkey on Parameter-based Interpretability

"The Cognitive Revolution" | AI Builders, Researchers, and Live Player Analysis

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Transitioning Insights: From Apollo to Goodfire

This chapter explores the speaker's shift from Apollo Research to Goodfire, highlighting the significance of their work on mechanistic interpretability in AI. It delves into parameter decomposition in neural networks, contrasting it with activation-based approaches to better understand how neural networks process inputs and produce intelligent outputs. The discussion emphasizes the complexities of neural network behavior and the philosophical implications of understanding computations versus mere recognition of variables.

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