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Hattie Zhou: Lottery Tickets and Algorithmic Reasoning in LLMs

The Gradient: Perspectives on AI

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Evolution of Weights in Neural Network Training

During neural network training, individual weights do not simply move towards zero in a monotonic fashion. The weights may not reach zero even at the end of training, and they do not retain the same values as in the initial model. Individual weights may fluctuate in different directions throughout training to allow the network to adjust itself. Information is forgotten and relearned during training, as evidenced by the model's fluctuating performance on individual data points. The exact mechanism of this process remains unclear.

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