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SODA2025顶会

Clustering Mixtures of Bounded Covariance Distributions Under Optimal Separation

Ilias Diakonikolas, Daniel M. Kane, Jasper C. H. Lee, Thanasis Pittas

2025年份
1顶会引用

摘要

We study the clustering problem for mixtures of bounded covariance distributions, under a fine-grained separation assumption. Specifically, given samples from a k-component mixture distribution D = k i=1 w i P i , where each w i ≥ α for some known parameter α, and each P i has unknown covariance Σ i ⪯ σ 2 i • I d for some unknown σ i , the goal is to cluster the samples assuming a pairwise mean separation in the order of (σ i + σ j )/ √ α between every pair of components P i and P j . Our main contributions are as follows:

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