Data Science and Machine Learning (Theory and Projects) A to Z - Gradient Descent in CNNs: Implementation in NumPy Forwa

Data Science and Machine Learning (Theory and Projects) A to Z - Gradient Descent in CNNs: Implementation in NumPy Forwa

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Information Technology (IT), Architecture, Other

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The video tutorial covers backpropagation in convolutional neural networks (CNNs), starting with a simple example and extending to more complex models with multiple filters and layers. It emphasizes understanding the mathematical concepts and implementing them in Python. The tutorial details the forward pass implementation, highlighting the differences between inefficient and vectorized approaches. It concludes with preparations for the backward pass, focusing on derivatives and chain rules.

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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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