摄动在成分数据分析中的作用

J. Aitchison, K. Ng
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引用次数: 33

摘要

在标准的多元统计分析中,常见的假设涉及平均向量和子向量的变化。在成分数据分析中,现在已经很好地确定,成分变化最容易用简单的摄动运算来描述,并且子成分取代了子向量的边缘概念。在食品工业的两个激励实验研究的背景下,涉及牛奶和鸡尸体的成分,本文强调了认识到相关单纯形样本空间变化的基本操作的重要性。例如,可以用扰动值和亚成分稳定性以及开发的测试程序来表示关于任何成分效应性质的定义良好的假设。这些程序在两种实际情况下应用于这些假设的格。我们认为这两个问题是配对比较或分裂图实验和标准多变量分析术语中的单独样本比较实验分析的对应问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The role of perturbation in compositional data analysis
In standard multivariate statistical analysis, common hypotheses of interest concern changes in mean vectors and subvectors. In compositional data analysis it is now well established that compositional change is most readily described in terms of the simplicial operation of perturbation and that subcompositions replace the marginal concept of subvectors. Against the background of two motivating experimental studies in the food industry, involving the compositions of cow’s milk and chicken carcasses, this paper emphasizes the importance of recognizing this fundamental operation of change in the associated simplex sample space. Well-defined hypotheses about the nature of any compositional effect can be expressed, for example, in terms of perturbation values and subcompositional stability and testing procedures developed. These procedures are applied to lattices of such hypotheses in the two practical situations. We identify the two problems as being the counterpart of the analysis of paired comparison or split plot experiments and of separate sample comparative experiments in the jargon of standard multivariate analysis.
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