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      Nonparametric Unsupervised Classification

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          Abstract

          Unsupervised classification methods learn a discriminative classifier from unlabeled data, which has been proven to be an effective way of simultaneously clustering the data and training a classifier from the data. Various unsupervised classification methods obtain appealing results by the classifiers learned in an unsupervised manner. However, existing methods do not consider the misclassification error of the unsupervised classifiers except unsupervised SVM, so the performance of the unsupervised classifiers is not fully evaluated. In this work, we study the misclassification error of two popular classifiers, i.e. the nearest neighbor classifier (NN) and the plug-in classifier, in the setting of unsupervised classification.

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          Author and article information

          Journal
          2012-10-02
          2013-05-20
          Article
          1210.0645
          7cdd82ae-97c9-45ba-8787-0e7380e4780e

          http://arxiv.org/licenses/nonexclusive-distrib/1.0/

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          Submitted to ALT 2013
          cs.LG stat.ML

          Machine learning,Artificial intelligence
          Machine learning, Artificial intelligence

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