Compositional cubes: a new concept for multi-factorial compositions

被引:0
|
作者
Kamila Fačevicová
Peter Filzmoser
Karel Hron
机构
[1] Palacký University Olomouc,Department of Mathematical Analysis and Applications of Mathematics
[2] TU Wien,Institute of Statistics and Mathematical Methods in Economics
来源
Statistical Papers | 2023年 / 64卷
关键词
Analysis of independence; Compositional data; Coordinate representation; Orthogonal decomposition;
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中图分类号
学科分类号
摘要
Compositional data are commonly known as multivariate observations carrying relative information. Even though the case of vector or even two-factorial compositional data (compositional tables) is already well described in the literature, there is still a need for a comprehensive approach to the analysis of multi-factorial relative-valued data. Therefore, this contribution builds around the current knowledge about compositional data a general theoretical framework for k-factorial compositional data. As a main finding it turns out that, similar to the case of compositional tables, also the multi-factorial structures can be orthogonally decomposed into an independent and several interactive parts and, moreover, a coordinate representation allowing for their separate analysis by standard analytical methods can be constructed. For the sake of simplicity, these features are explained in detail for the case of three-factorial compositions (compositional cubes), followed by an outline covering the general case. The three-dimensional structure is analyzed in depth in two practical examples, dealing with systems of spatial and time dependent compositional cubes. The methodology is implemented in the R package robCompositions.
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页码:955 / 985
页数:30
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