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Exploring a Tobacco Data Set with a Multiblock PLS Method
被引:0
|作者:
Vivien, Myrtille
[1
]
Sabatier, Robert
[1
]
机构:
[1] Lab Phys Ind & Traitement Informat, Fac Pharm, F-34093 Montpellier 5, France
关键词:
GOMCIA-PLS;
Multiblock PLS;
Multivariate data analysis;
Regression;
PARTIAL LEAST-SQUARES;
REGRESSION;
MODELS;
DIAGNOSIS;
SELECTION;
D O I:
10.2174/157341112800392643
中图分类号:
O65 [分析化学];
学科分类号:
070302 ;
081704 ;
摘要:
In chemistry, multiblock datasets are easily encountered with variables of different natures, or measured at different times for example, here, we use the sequential multiblock regression method GOMCIA-PLS1 to predict quantitative variables from several predictors gathered according to their nature and used simultaneously. In this article, it will be applied to predict a chemical variable from Near Infrared Spectrometry (NIRS) chemical and thermolyze data measured on different tobacco samples. The multiblock GOMCIA-PLS1 method is compared to other methods and its good performances are shown.
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页码:273 / 282
页数:10
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