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High-Dimensional Data Mining

Subspace Clustering, Outlier Detection and applications to classification

Language EnglishEnglish
Book Paperback
Book High-Dimensional Data Mining Andrew Foss
Libristo code: 06843096
Publishers VDM Verlag, August 2011
Data mining in high dimensionality typically faces the consequences of increasing sparsity and decli... Full description
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Data mining in high dimensionality typically faces the consequences of increasing sparsity and declining differentiation between points, while sparsity tends to increase false negatives. Here, the problem of solving high-dimensional problems using low-dimensional solutions is addressed. In clustering, we provide a new framework for finding candidate subspaces and the clusters within them using only two-dimensional clustering. It is robust to noise and handles overlapping clusters. In the field of outlier detection, several novel algorithms suited to high-dimensional data are presented.m These outperform state-of-the-art outlier detection algorithms in ranking outlierness for many datasets regardless of whether they contain rare classes or not. This approach can be a powerful means of classification for heavily overlapping classes given sufficiently high dimensionality. This is achieved solely due to the differences in variance among the classes. On some difficult datasets, this unsupervised approach yielded better separation than the very best supervised classifiers. This opens a new field in data mining, classification through differences in variance rather than spatial location.

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About the book

Full name High-Dimensional Data Mining
Author Andrew Foss
Language English
Binding Book - Paperback
Date of issue 2011
Number of pages 152
EAN 9783639362114
ISBN 363936211X
Libristo code 06843096
Publishers VDM Verlag
Weight 231
Dimensions 152 x 229 x 9
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