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Using contrasts as data pretreatment method in pattern recognition of multivariate data

โœ Scribed by W. Wu; Q. Guo; D. Jouan-Rimbaud; D.L. Massart


Publisher
Elsevier Science
Year
1999
Tongue
English
Weight
389 KB
Volume
45
Category
Article
ISSN
0169-7439

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โœฆ Synopsis


A contrast method originally proposed by Spiegelman C.H. Spiegelman, Calibration: a look at the mix of theory, methx ods and experimental data, presented at Compana '95, Wuerzburg, Germany. is modified to pretreat multivariate data for classification. Three NIR data sets and one pollution data set are used as examples. Our results show that the contrast method greatly improves the ratios of between-to within-class variance. It is more powerful than offset correction, SNV, first-and second-derivative methods in the cases studied. This conclusion does not depend on the type of classifier used. Regularised ลฝ . ลฝ . discriminant analysis RDA and partial least squares PLS2 with univariate feature selection based on Fisher's ratio were applied here. There is a risk that chance correlations occur after the contrast pretreatment. The chance correlation decreases ลฝ . after first eliminating un-informative variables using the modified Uninformative Variable Elimination UVE -PLS method.


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