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1996 | OriginalPaper | Buchkapitel

A Comparative Evaluation of Sequential Feature Selection Algorithms

verfasst von : David W. Aha, Richard L. Bankert

Erschienen in: Learning from Data

Verlag: Springer New York

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Several recent machine learning publications demonstrate the utility of using feature selection algorithms in supervised learning tasks. Among these, sequential feature selection algorithms are receiving attention. The most frequently studied variants of these algorithms are forward and backward sequential selection. Many studies on supervised learning with sequential feature selection report applications of these algorithms, but do not consider variants of them that might be more appropriate for some performance tasks. This paper reports positive empirical results on such variants, and argues for their serious consideration in similar learning tasks.

Metadaten
Titel
A Comparative Evaluation of Sequential Feature Selection Algorithms
verfasst von
David W. Aha
Richard L. Bankert
Copyright-Jahr
1996
Verlag
Springer New York
DOI
https://doi.org/10.1007/978-1-4612-2404-4_19