Why and When You Should Avoid Using z-scores in Graphs Displaying Profile or Group Differences

为什么以及何时应该避免在显示群体或组间差异的图表中使用 z 分数

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Abstract

Many person-oriented studies use z-standardized scores before conducting cluster analyses and/or before displaying group differences. This article summarizes reasons why z- standardized scores can often be problematic and misleading in person-oriented methods. The article shows examples illustrating why and how the use of z-scores in group classification and comparisons can be misleading, and proposes less problematic methods. Reasons why z-standardized scores should be avoided when classifying or displaying differences between clusters, profiles, and other groups are: The ratio of the difference between two groups is distorted in z-scores.The ratio of the difference between two variables is distorted in z-scores.Information about item endorsement and item rejection is lost.The psychological meaning of a given z-score does not compare across samples and variables.Group assignments can be misleading if z-scores are used to assign individuals to groups.The group size and group frequency may be affected if z-scores instead of raw scores are used to assign individuals to groups.Group differences in further outcome variables can change if z-scores instead of raw scores are used to assign individuals to groups.Alternative normalization techniques perform better than z-standardization in cluster analyses.z-standardization relies on homogeneity assumptions, including unimodality, but distributions analysed in person-oriented research are often multimodal.Person-oriented methods typically examine within-person patterns to answer research questions about within-person phenomena, whereas z-standardization typically refers to between-person variation, which creates a logical mismatch between theory and method. Alternatives to using z-scores in graphs displaying profiles and group differences are using raw scores or using scale transformations that use the range, not the standard deviation in the normalization.

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