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MLG 028 Hyperparameters 2

Machine Learning Guide

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Using Grid Search for Machine Learning Problems

In grid search, we combine every hyper perometer with every other hyper perameter. So for example, network width, you might try the values four, eight, 16, 32, four and so on. For simple problems, this is a ok but for more complex problems, we'll switch to random search. The idea is if your machine learning problem is not utationally fast, or that grid is too big to run grid search on, it will just take too long to search for the optimal hyper perameters combo.

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