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Distributional Equivalence and Subcompositional Coherence in the Analysis of Compositional Data, Contingency Tables and Ratio-Scale Measurements

机译:成分数据,列联表和比率量表的分析中的分布等价和子成分相干性

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摘要

We consider two fundamental properties in the analysis of two-way tables of positive data: the principle of distributional equivalence, one of the cornerstones of correspondence analysis of contingency tables, and the principle of subcompositional coherence, which forms the basis of compositional data analysis. For an analysis to be subcompositionally coherent, it suffices to analyze the ratios of the data values. A common approach to dimension reduction in compositional data analysis is to perform principal component analysis on the logarithms of ratios, but this method does not obey the principle of distributional equivalence. We show that by introducing weights for the rows and columns, the method achieves this desirable property and can be applied to a wider class of methods. This weighted log-ratio analysis is theoretically equivalent to "spectral mapping", a multivariate method developed almost 30 years ago for displaying ratio-scale data from biological activity spectra. The close relationship between spectral mapping and correspondence analysis is also explained, as well as their connection with association modeling. The weighted log-ratio methodology is used here to visualize frequency data in linguistics and chemical compositional data in archeology.
机译:我们在分析正向双向数据表时考虑了两个基本属性:分布等价原理,列联表对应分析的基石之一和子组成相干原理,这构成了组成数据分析的基础。为了使分析在子组成上连贯,只需分析数据值的比率即可。成分数据分析中降维的一种常见方法是对比率的对数执行主成分分析,但是这种方法没有遵循分布等价原理。我们表明,通过为行和列引入权重,该方法可以实现此理想的属性,并且可以应用于更广泛的方法类别。这种加权的对数比分析在理论上等效于“光谱映射”,这是一种将近30年前开发的多元方法,用于显示来自生物活性光谱的比例数据。还说明了光谱映射和对应分析之间的紧密关系,以及它们与关联建模的关系。此处使用加权对数比方法来可视化语言学中的频率数据和考古学中的化学成分数据。

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