Data Science and Machine Learning (Theory and Projects) A to Z - Gradient Descent in RNN: Equations

Data Science and Machine Learning (Theory and Projects) A to Z - Gradient Descent in RNN: Equations

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Information Technology (IT), Architecture

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This video tutorial delves into the details of a recurrent neural network, building on the previous setup and notations. It explains the structure of neurons and layers, including recurrent and output layers, and discusses the dimensions of feature vectors and outputs. The video covers the equations that govern the network's operations, including activation functions and biases. Finally, it focuses on parameter optimization using gradient descent to minimize loss, setting the stage for further exploration in subsequent videos.

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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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