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Gordon M. Redwine

Interesting patterns for clustering high-dimensional data

Interesting patterns for clustering high-dimensional data

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Recent advances in data mining allow for exploiting patterns as the primary means for clustering and classifying large collections of data. In this thesis, we present three advances in pattern-based clustering technology, an advance in semi-supervised pattern-based classification, and a related advance in pattern frequency counting. In our first contribution, we analyze numerous deficiencies with traditional patternsignificance measures such as support and confidence, and propose a web image clustering algorithm that uses an objective interestingness measure to identify significant patterns, yielding measurably better clustering quality.

Author: Gordon M. Redwine
Publisher: Gordon M. Redwine
Published: 05/02/2023
Pages: 168
Binding Type: Paperback
Weight: 0.51lbs
Size: 9.00h x 6.00w x 0.36d
ISBN: 9783427330684
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