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Learning Riemannian Metrics

We propose a solution to the problem of estimating a Riemannian metric associated with a given differentiable manifold. The metric learning problem is based on minimizing the relative volume of a given set of points. We derive the details for a family of metrics on the multinomial simplex. The resulting metric has applications in text classification and bears some similarity to TFIDF representation of text documents.

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Learning Riemannian Metrics3 visible / 3 total nodes / 2 links
AuthorshipTopic signalWLearning Riemannian Metricspreprint / 2012AGuy LebanonResearcherTMachine Learning49008 works
PaperSignal 102 links

Learning Riemannian Metrics

preprint / 2012

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