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  1. Research Outputs

Multi Way Classification

Chapter
Publication Date:
2020
Short description:
Multi Way Classification / Cocchi, M., Li Vigni, M., Durante, C. - In: Comprehensive Chemometrics 2nd edition / [a cura di] Steven Brown, Romà Tauler, Beata Walczak. - Amsterdam : Elsevier, 2020. - ISBN 9780444641663. - pp. 701-721 [10.1016/B978-0-12-409547-2.14590-1]
abstract:
In this Chapter, the state-of-the-art approaches for the classification of multi-way data is presented and discussed. The theoretical basis and applicative guidelines for multilinear (or multi-way) Partial Least Squares Discriminant Analysis (NPLS-DA) and Multi-way Soft Independent Modelling of Class Analogy (NSIMCA) are detailed. Furthermore, two-dimensional linear discriminant analysis (2DLDA) and a proposal for truly multilinear discriminant analysis are illustrated. The truly multi-way methods are compared to unfolding and feature extraction followed by bilinear classification. Practical hints are depicted through discussion of a case of study.
Iris type:
Capitolo/Saggio
Keywords:
2D linear discriminant analysis (2DLDA); Class Modeling; Discriminant power; Multilinear partial least squares discriminant analysis (NPLS-DA); Multi-way classification; Multi-way soft independent Modeling of class analogy (NSIMCA); Multi-way VIP; PARAFAC; Selectivity ratio; Tucker3
List of contributors:
Cocchi, Marina; Li Vigni, Mario; Durante, Caterina
Authors of the University:
COCCHI Marina
DURANTE Caterina
Handle:
https://iris.unimore.it/handle/11380/1203779
Book title:
Comprehensive Chemometrics 2nd edition
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