Unsupervised classification methods in food sciences: discussion and outlook

被引:46
作者
Kozak, Marcin [2 ]
Scaman, Christine H. [1 ]
机构
[1] Univ British Columbia, Fac Land & Food Syst, Vancouver, BC V6T 1Z4, Canada
[2] Warsaw Univ Life Sci, Dept Biometry, Fac Agr & Biol, PL-02776 Warsaw, Poland
关键词
multivariate analysis; unsupervised classification; principal component analysis; principal component similarity analysis; heuristic cluster analysis; model-based cluster analysis;
D O I
10.1002/jsfa.3215
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
This paper reviews three unsupervised multivariate classification methods: principal component analysis, principal component similarity analysis and heuristic cluster analysis. The theoretical basis of each method is presented in brief, and assumptions inherent to the methods are highlighted. A literature review shows that these methods have sometimes been used inappropriately or without referencing all essential parameters. The paper also brings to the attention of the reader a relatively unknown method: probabilistic or model-based cluster analysis. The goal of this method is to uncover the true classification of objects rather than a convenient classification provided by the other methods. For this reason it is felt that model-based cluster analysis will have broad application in the future. (C) 2008 Society of Chemical Industry.
引用
收藏
页码:1115 / 1127
页数:13
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