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A Monte Carlo method for comparing generalized estimating equations to conventional statistical techniques for discounting data

机译:用于将广义估计方程与折扣数据统计技术进行比较的蒙特卡罗方法

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摘要

Discounting is the process by which outcomes lose value. Much of discounting research has focused on differences in the degree of discounting across various groups. This research has relied heavily on conventional null hypothesis significance tests that are familiar to psychologists, such as t-tests and ANOVAs. As discounting research questions have become more complex by simultaneously focusing on within-subject and between-group differences, conventional statistical testing is often not appropriate for the obtained data. Generalized estimating equations (GEE) are one type of mixed-effects model that are designed to handle autocorrelated data, such as within-subject repeated-measures data, and are therefore more appropriate for discounting data. To determine if GEE provides similar results as conventional statistical tests, we compared the techniques across 2,000 simulated data sets. The data sets were created using a Monte Carlo method based on an existing data set. Across the simulated data sets, the GEE and the conventional statistical tests generally provided similar patterns of results. As the GEE and more conventional statistical tests provide the same pattern of result, we suggest researchers use the GEE because it was designed to handle data that has the structure that is typical of discounting data.
机译:折扣是结果失去价值的过程。大部分折扣研究都集中在各种群体中折扣程度的差异。该研究依稀依赖于心理学家熟悉的常规无效假设意义测试,例如T-Tests和Anovas。由于折扣研究问题通过同时关注对象内部和组之间的差异来变得更加复杂,传统的统计测试通常不适合获得的数据。广义估计方程(GEE)是一种混合效应模型,用于处理自相关数据,例如在对象内的重复测量数据中,因此更适合折扣数据。要确定GEE是否提供与常规统计测试类似的结果,我们将技术与2,000个模拟数据集进行了比较。使用基于现有数据集的Monte Carlo方法创建数据集。在模拟数据集中,GEE和传统统计测试通常提供了类似的结果模式。随着GEE和更传统的统计测试提供相同的结果模式,我们建议研究人员使用GEE,因为它旨在处理具有典型折扣数据的结构的数据。

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