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MLG 009 Deep Learning

Machine Learning Guide

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The Hidden Layer of Machine Learning

The purpose of hidden layer is to try every which way combination of features from our data in order to learn the best way to combine features. What the hid layer is doing is learning how to combine the features optimaly, and then it sends all those out to the final neuron, which will tell you the final result. So there you see a single layer neural network learning how to best combine parometers for a situation which is non linear. And then, of course, our final output function, objective function in this case, is linear regression,. And in the case of classification is logistic regression. Ok? Now we learned one super power of neural networks, feature learning,learning how to combine

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