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Tom Hess

3 accepted papers

2021

A Constant Approximation Algorithm for Sequential Random-Order No-Substitution k-Median Clustering

NeurIPS 2021poster

We study k-median clustering under the sequential no-substitution setting. In this setting, a data stream is sequentially observed, and some of the points are selected by the algorithm as cluster centers. However, a point can be selected as a center only immediately after it is observed, before obse…

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