Backpropagation And Gradient Descent In Neural Networks | Neural Network Tutorial | Simplilearn

Описание к видео Backpropagation And Gradient Descent In Neural Networks | Neural Network Tutorial | Simplilearn

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This video on backpropagation and gradient descent will cover the basics of how backpropagation and gradient descent plays a role in training neural networks - using an example on how to recognize the handwritten digits using a neural network. After predicting the results, you will see how to train the network using backpropagation to obtain the results with high accuracy. Backpropagation is the process of updating the parameters of a network to reduce the error in prediction. You will also understand how to calculate the loss function to measure the error in the model. Finally, you will see with the help of a graph, how to find the minimum of a function using gradient descent.

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