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d60eec88747bb81ea4798374492e2fcb2d3b431d
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5 Commits

Author SHA1 Message Date
Al
ababb8f2d0 [fix] sign comparison in regularized gradient computation for logistic regression 2016-01-26 01:16:16 -05:00
Al
f808f74271 [language_classification] Automatic hyperparameter optimization using either the cross-validation set or two distinct subsets of the training set 2016-01-17 21:11:37 -05:00
Al
62017fd33d [optimization] Using sparse updates in stochastic gradient descent. Decomposing the updates into the gradient of the loss function (zero for features not observed in the current batch) and the gradient of the regularization term. The derivative of the regularization term in L2-regularized models is equivalent to an exponential decay function. Before computing the gradient for the current batch, we bring the weights up to date only for the features observed in that batch, and update only those values 2016-01-09 03:37:31 -05:00
Al
562cc06eaf [classification] Sparse version of logistic regression gradient which, given an array of the features/columns used in the input batch, only updates the gradient for that batch, even for the operations which otherwise would apply to the entire matrix (scaling by -1/m, regularization) 2016-01-09 01:33:33 -05:00
Al
4acf10c3a4 [classification] Multinomial logistic regression, gradient and cost function 2016-01-08 01:03:09 -05:00
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