Data Science and Machine Learning (Theory and Projects) A to Z - Deep Neural Networks and Deep Learning Basics: Training

Data Science and Machine Learning (Theory and Projects) A to Z - Deep Neural Networks and Deep Learning Basics: Training

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Information Technology (IT), Architecture

University

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The video introduces the concept of backpropagation in neural networks using a binary classification example. It explains the forward and backward pass processes, where the forward pass involves computing the loss with current parameters, and the backward pass updates parameters to minimize the loss. The video also touches on stopping criteria and technical issues in training, such as learning rates and network architecture. A preview of the next video is provided, which will cover more technical details like learning rates, stopping conditions, and network architecture.

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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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