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Pavel Dvurechenskii

3 accepted papers

2018

Decentralize and Randomize: Faster Algorithm for Wasserstein Barycenters

NeurIPS 2018spotlight

We study the decentralized distributed computation of discrete approximations for the regularized Wasserstein barycenter of a finite set of continuous probability measures distributedly stored over a network. We assume there is a network of agents/machines/computers, and each agent holds a private c…

Cited by 129SourcePDFScholar
2016

Learning Supervised PageRank with Gradient-Based and Gradient-Free Optimization Methods

NeurIPS 2016poster

In this paper, we consider a non-convex loss-minimization problem of learning Supervised PageRank models, which can account for features of nodes and edges. We propose gradient-based and random gradient-free methods to solve this problem. Our algorithms are based on the concept of an inexact oracle…

Cited by 90SourcePDFScholar