Cutoff for exact recovery of Gaussian mixture models

Chen, Xiaohui, Yang, Yun

arXiv.org Machine Learning 

We determine the cutoff value on separation of cluster centers for exact recovery of cluster labels in a $K$-component Gaussian mixture model with equal cluster sizes. Moreover, we show that a semidefinite programming (SDP) relaxation of the $K$-means clustering method achieves such sharp threshold for exact recovery without assuming the symmetry of cluster centers.

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