dealing imbalanced data in neural network
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I want to use deep learning network for classification problem. I have an issue of imbalanced data, means one of the classes have less training examples than the others.
I know there is an option to remove training data from the other classes, but I wonder if there is other solution. For example, is there an option to modify the cost layer such that the cost of miss classification a specific class will be larger? Thanks,
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