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Pierre Dognin*

1 accepted papers

2019

Wasserstein Barycenter Model Ensembling

ICLR 2019poster

In this paper we propose to perform model ensembling in a multiclass or a multilabel learning setting using Wasserstein (W.) barycenters. Optimal transport metrics, such as the Wasserstein distance, allow incorporating semantic side information such as word embeddings. Using W. barycenters to find t…

Cited by 37SourcePDFScholar