The maximal data piling direction for discrimination

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We study a discriminant direction vector that generally exists only in high-dimension, low sample size settings. Projections of data onto this direction vector take on only two distinct values, one for each class. There exist infinitely many such directions in the subspace generated by the data; but the maximal data piling vector has the longest distance between the projections. This paper investigates mathematical properties and classification performance of this discrimination method.
Publisher
OXFORD UNIV PRESS
Issue Date
2010-03
Language
English
Article Type
Article
Citation

BIOMETRIKA, v.97, no.1, pp.254 - 259

ISSN
0006-3444
DOI
10.1093/biomet/asp084
URI
http://hdl.handle.net/10203/285433
Appears in Collection
IE-Journal Papers(저널논문)
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