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view toolboxes/distance_learning/mlr/loss/lossHinge.m @ 0:cc4b1211e677 tip
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646 (e263d8a21543) added further path and more save "camirversion.m"
author | Daniel Wolff |
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date | Fri, 19 Aug 2016 13:07:06 +0200 |
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function Xi = lossHinge(W, Psi, M, gradient) % % Xi = lossHinge(W, Psi, M, gradient) % % W: d*d metric % Psi: d*d feature matrix % M: the desired margin % gradient: if 0, returns the loss value % if 1, returns the gradient of the loss WRT W Xi = max(0, M - sum(sum(W .* Psi))); if gradient & Xi > 0 Xi = -Psi; end end