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Visualizing Gradient Descent Parameters in Torch

This post explores the effects of different parameters on model training using Torch's stochastic gradient descent optimizer. It includes a toy problem of performing linear regression, visualizations of loss functions, and the impact of parameters like momentum, weight decay, dampening, and nesterov momentum.

    #machine-learning#python#pytorch#gradient-descent
Feb 27, 2024•7m read time•From towardsdatascience.com
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Visualizing Gradient Descent Parameters in TorchToy ProblemVisualizing the Loss FunctionVisualizing the Other ParametersReferences
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