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Unsupervised learning
1 reference results for: Unsupervised learning
Wikipedia
Unsupervised learning is a type of machine learning where manual labels of inputs are not used. It is distinguished from supervised learning and reinforcement learning approaches. In supervised learning, a typical task is classification or regression, using a set of human prepared examples.

One form of unsupervised learning is clustering. Among neural network models, the Self-Organizing Map and Adaptive resonance theory (ART) are commonly used unsupervised learning algorithms. The ART model allows the number of clusters to vary with problem size and lets the user control the degree of similarity between members of the same clusters by means of a user-defined constant called the vigilance parameter. ART networks are also used for many pattern recognition tasks, such as automatic target recognition and seismic signal processing. The first version of ART was "ART1", developed by Carpenter and Grossberg(1988).

Bibliography

  • Geoffrey Hinton, Terrence J. Sejnowski (editors) (1999) Unsupervised Learning and Map Formation: Foundations of Neural Computation, MIT Press, ISBN 0-262-58168-X (This book focuses on unsupervised learning in neural networks.)
  • S. Kotsiantis, P. Pintelas, Recent Advances in Clustering: A Brief Survey, WSEAS Transactions on Information Science and Applications, Vol 1, No 1 (73-81), 2004.
  • Richard O. Duda, Peter E. Hart, David G. Stork. Unsupervised Learning and Clustering, Ch. 10 in Pattern classification (2nd edition), p. 571, Wiley, New York, ISBN 0-471-05669-3, 2001.

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