Singularity and nonnormality in the classification of compositional data

被引:11
作者
Bohling, GC [1 ]
Davis, JC
Olea, RA
Harff, J
机构
[1] Kansas Geol Survey, Lawrence, KS 66044 USA
[2] Baltic Sea Res Inst, Warnemunde, Germany
来源
MATHEMATICAL GEOLOGY | 1998年 / 30卷 / 01期
关键词
regionalization; compositions; pseudo-inverses; logratio transforms;
D O I
10.1023/A:1021705120065
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Geologists may want to classify compositional data and express the classification as a map. Regionalized classification is a tool that can be used for this purpose, bur it incorporates discriminant analysis, which requires the computation and inversion of a covariance matrix. Covariance matrices of compositional data always will be singular (noninvertible) because of the unit-sum constraint. Fortunately, discriminant analyses can be calculated using a pseudo-inverse of the singular covariance matrix; this is done automatically by some statistical packages such as SAS Granulometric data from the Darss Sill region of the Baltic Sea is used to explore how the pseudo-inversion procedure influences discriminant analysis results, comparing the algorithm used by SAS to the more conventional Moore-Penrose algorithm. Logratio transforms have been recommended to overcome problems associated with analysis of compositional data, including singularity. A regionalized classification of the Darss Sill data after Logratio transformation is different only slightly from one based on raw granulometric data, suggesting that closure problems do nor influence severely regionalized classification of compositional data.
引用
收藏
页码:5 / 20
页数:16
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