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Clustering is of central importance in a number of disciplines including Machine Learning, Statistics, and Data Mining. This paper has two foci: (1) It describes how existing algorithms for clustering can benefit from simple sampling techniques arising from work in statistics Pol84. (2) It motivates and introduces a new model of clustering that is in the spirit of the PAC (probably approximately correct) learning model, and gives examples of efficient PAC-clustering algorithms.
Mishra et al. (Tue,) studied this question.