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Learning with a mutualistic teacher
Authors:K Chidananda Gowda  G Krishna
Affiliation:

Department of Electrical Engineering, S.J. College of Engineering, Mysore, 570 006, India

School of Automation, Indian Institute of Science, Bangalore, 560 012, India

Abstract:The concept of a “mutualistic teacher” is introduced for unsupervised learning of the mean vectors of the components of a mixture of multivariate normal densities, when the number of classes is also unknown. The unsupervised learning problem is formulated here as a multi-stage quasi-supervised problem incorporating a cluster approach. The mutualistic teacher creates a quasi-supervised environment at each stage by picking out “mutual pairs” of samples and assigning identical (but unknown) labels to the individuals of each mutual pair. The number of classes, if not specified, can be determined at an intermediate stage. The risk in assigning identical labels to the individuals of mutual pairs is estimated. Results of some simulation studies are presented.
Keywords:Unsupervised learning  Parameter-estimation  Clustering  Mutual nearest neighbourhood  Pattern recognition
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