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Two SPSS programs for interpreting multiple regression results

机译:两个SPSS程序用于解释多元回归结果

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摘要

When multiple regression is used in explanation-oriented designs, it is very important to determine both the usefulness of the predictor variables and their relative importance. Standardized regression coefficients are routinely provided by commercial programs. However, they generally function rather poorly as indicators of relative importance, especially in the presence of substantially correlated predictors. We provide two user-friendly SPSS programs that implement currently recommended techniques and recent developments for assessing the relevance of the predictors. The programs also allow the user to take into account the effects of measurement error. The first program, MIMR-Corr.sps, uses a correlation matrix as input, whereas the second program, MIMR-Raw.sps, uses the raw data and computes bootstrap confidence intervals of different statistics. The SPSS syntax, a short manual, and data files related to this article are available as supplemental materials from http:// brm.psychonomic-journals.org/content/supplemental.
机译:在面向解释的设计中使用多元回归时,确定预测变量的有用性及其相对重要性非常重要。标准化回归系数通常由商业程序提供。但是,它们通常不能很好地用作相对重要性的指标,尤其是在存在基本相关的预测变量的情况下。我们提供了两个用户友好的SPSS程序,这些程序实现了当前推荐的技术和最新的发展,以评估预测变量的相关性。该程序还允许用户考虑测量误差的影响。第一个程序MIMR-Corr.sps使用相关矩阵作为输入,而第二个程序MIMR-Raw.sps使用原始数据并计算不同统计信息的引导置信区间。可从http://brm.psychonomic-journals.org/content/supplemental作为补充材料获得与本文相关的SPSS语法,简短手册和数据文件。

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