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Warren Schudy

3 accepted papers

2022

Stars: Tera-Scale Graph Building for Clustering and Learning

NeurIPS 2022accept

A fundamental procedure in the analysis of massive datasets is the construction of similarity graphs. Such graphs play a key role for many downstream tasks, including clustering, classification, graph learning, and nearest neighbor search. For these tasks, it is critical to build graphs which are sp…

Cited by 6SourcePDFScholar
2021

Practical Large-Scale Linear Programming using Primal-Dual Hybrid Gradient

NeurIPS 2021poster

We present PDLP, a practical first-order method for linear programming (LP) that can solve to the high levels of accuracy that are expected in traditional LP applications. In addition, it can scale to very large problems because its core operation is matrix-vector multiplications. PDLP is derived by…

2019

Variance Reduction in Bipartite Experiments through Correlation Clustering

NeurIPS 2019poster

Causal inference in randomized experiments typically assumes that the units of randomization and the units of analysis are one and the same. In some applications, however, these two roles are played by distinct entities linked by a bipartite graph. The key challenge in such bipartite settings is how…

Cited by 69SourcePDFScholar