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Learning with a Wasserstein Loss

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arxiv 1506.05439 v3 pith:UT4ND4DD submitted 2015-06-17 cs.LG cs.CVstat.ML

classification cs.LGcs.CVstat.ML
keywords wassersteinlearningdistancelossmeasuresmetricdescribemulti-label
verification ladder T0 review T1 audit T2 compute T3 formal
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Learning to predict multi-label outputs is challenging, but in many problems there is a natural metric on the outputs that can be used to improve predictions. In this paper we develop a loss function for multi-label learning, based on the Wasserstein distance. The Wasserstein distance provides a natural notion of dissimilarity for probability measures. Although optimizing with respect to the exact Wasserstein distance is costly, recent work has described a regularized approximation that is efficiently computed. We describe an efficient learning algorithm based on this regularization, as well as a novel extension of the Wasserstein distance from probability measures to unnormalized measures. We also describe a statistical learning bound for the loss. The Wasserstein loss can encourage smoothness of the predictions with respect to a chosen metric on the output space. We demonstrate this property on a real-data tag prediction problem, using the Yahoo Flickr Creative Commons dataset, outperforming a baseline that doesn't use the metric.

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