Data Science and Machine Learning (Theory and Projects) A to Z - DNN and Deep Learning Basics: DNN Gradient Descent

Data Science and Machine Learning (Theory and Projects) A to Z - DNN and Deep Learning Basics: DNN Gradient Descent

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Information Technology (IT), Architecture

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The video tutorial explains the importance of selecting the right parameters for a neural network and how a well-designed architecture can be ineffective without optimal parameters. It introduces the concept of a loss function as a measure of network performance and explains how gradient descent is used to optimize parameters. The tutorial covers the computation of gradients using automatic differentiation, particularly in Pytorch, and discusses the implementation of gradient descent, including considerations for the learning rate.

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OPEN ENDED QUESTION

3 mins • 1 pt

What new insight or understanding did you gain from this video?

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