对应分析中的功率变换

M. Greenacre
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引用次数: 62

摘要

在应用对应分析算法之前,正数据表的幂变换显示了与对数比分析直接相关的一系列方法。这一观点有两种变体。第一种方法是简单地对原始数据进行功率变换并进行对应分析-当功率参数趋于零时,这种方法被证明收敛于未加权对数比分析。第二种方法是将功率变换应用于权变比,即表中的值相对于基于边际的期望值-这种方法收敛于加权对数比分析,或谱图。本文描述了两种应用:首先,种群遗传数据的矩阵本质上是二维的;其次,从几本书的语言分析中得到的具有更高维度的更大的交叉表。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Power Transformations in Correspondence Analysis
Power transformations of positive data tables, prior to applying the correspondence analysis algorithm, are shown to open up a family of methods with direct connections to the analysis of log-ratios. Two variations of this idea are illustrated. The first approach is simply to power transform the original data and perform a correspondence analysis - this method is shown to converge to unweighted log-ratio analysis as the power parameter tends to zero. The second approach is to apply the power transformation to the contingency ratios, that is, the values in the table relative to expected values based on the marginals - this method converges to weighted log-ratio analysis, or the spectral map. Two applications are described: first, a matrix of population genetic data which is inherently two-dimensional, and second, a larger cross-tabulation with higher dimensionality, from a linguistic analysis of several books.
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