DocumentCode :
706196
Title :
Subset selection with structured dictionaries in classification
Author :
Ince, Nuri F. ; Goksu, Fikri ; Tewfik, Ahmed H. ; Onaran, Ibrahim ; Cetin, A. Enis
Author_Institution :
Dept. of Electr. & Comput. Eng., Univ. of Minnesota, Minneapolis, MN, USA
fYear :
2007
fDate :
3-7 Sept. 2007
Firstpage :
1877
Lastpage :
1881
Abstract :
This paper describes a new approach for the selection of discriminant time-frequency features for classification. Unlike previous approaches that use the individual discrimination power of expansion coefficients, the proposed approach selects a subset of features by implementing a classifier directed pruning of an initial redundant set of candidate features. The candidate features are calculated from a structured redundant time-frequency analysis of the signal, such as an undecimated wavelet transform. We show that the proposed approach has a performance that is as good as or better than traditional classification approaches while using a much smaller number of features. In particular, we provide experimental results to demonstrate the superior performance of the algorithm in the area of impact acoustic classification for food kernel inspection. The proposed algorithm achieved 91.8% and 98.5% classification accuracies in separating open shell from closed shell pistachio nuts and discriminating between empty and full hazelnuts respectively. Traditional methods used in this area resulted in 82% and 97% classification accuracies respectively.
Keywords :
feature selection; signal classification; time-frequency analysis; wavelet transforms; candidate features; classifier directed pruning; closed shell pistachio nuts; discriminant time-frequency feature selection; expansion coefficients; food kernel inspection; impact acoustic classification; structured dictionaries; structured redundant time-frequency analysis; subset selection; undecimated wavelet transform; Decision support systems; Erbium; Europe; Manganese; Signal processing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Signal Processing Conference, 2007 15th European
Conference_Location :
Poznan
Print_ISBN :
978-839-2134-04-6
Type :
conf
Filename :
7099133
Link To Document :
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