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Biclustering in data mining

delete2008-09-01
delete207
PRE
AI
S
Stanislav Busygin
O
Oleg A. Prokopyev *
P
Pãnos M. Pardalos
DOI:10.1016/j.cor.2007.01.005delete
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摘要

摘要

En 中文
Biclustering consists in simultaneous partitioning of the set of samples and the set of their attributes (features) into subsets (classes). Samples and features classified together are supposed to have a high relevance to each other. In this paper we review the most widely used and successful biclustering techniques and their related applications. This survey is written from a theoretical viewpoint emphasizing mathematical concepts that can be met in existing biclustering techniques. (c) 2007 Published by Elsevier Ltd.
Keyword:
data mining
biclustering
classification
clustering
survey
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期刊

C
Computers and Operations Research
IF:
4.3
论文数:
6.5K
被引数:
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机构

U
University of Pittsburgh
学者数:
4.5W
论文数: 3.6W
被引数: 7.1W
P
pennsylvania commonwealth system of higher education (pcshe)
学者数:
12.9W
论文数: 11.7W
被引数: 177
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