Deep Learning CNN Convolutional Neural Networks with Python - Implementation in NumPy BackwardPass 5

Deep Learning CNN Convolutional Neural Networks with Python - Implementation in NumPy BackwardPass 5

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Interactive Video

Information Technology (IT), Architecture

University

Hard

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Wayground Content

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The video tutorial covers the computation of derivatives in gradient descent, focusing on the derivative with respect to B. It introduces vectorized code for efficient computation, explaining its benefits over non-vectorized code. The tutorial includes a step-by-step implementation of gradient descent on convolutional neural networks, demonstrating parameter updates and the effect of learning rates. It concludes with a preview of using high-level frameworks like TensorFlow for deep learning, highlighting their efficiency and ease of use.

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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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