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Knowledge acquisition via incremental conceptual clustering

by: Douglas H. Fisher
Machine Learning, Vol. 2, No. 2. (1 September 1987), pp. 139-172, doi:10.1007/bf00114265  Key: citeulike:6995029

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Abstract

Conceptual clustering is an important way of summarizing and explaining data. However, the recent formulation of this paradigm has allowed little exploration of conceptual clustering as a means of improving performance. Furthermore, previous work in conceptual clustering has not explicitly dealt with constraints imposed by real world environments. This article presents COBWEB, a conceptual clustering system that organizes data so as to maximize inference ability. Additionally, COBWEB is incremental and computationally economical, and thus can be flexibly applied in a variety of domains.


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