Bayesian Statistics in Psychological Research

Edwin Adrianta Surijah, I. M. F. Anggara
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Abstract

One of the key developments in psychological data analysis is the Bayesian implementation. This article aims to introduce Bayesian statistics application in psychological research. A data set of Marital Satisfaction and Positive Affect (n = 200) became an example to compare the regression results based on frequentist and Bayesian statistics. The data analysis examined the influence of positive affect on marital satisfaction. Based upon the prior information and observed data, results suggest that the average of the distribution of the posterior coefficient of positive affect is .31, with a deviation standard of .01 and a credible interval ranging from .30 to .33. The study’s results present the unique approach in interpreting the Bayesian result. This article also outlines diagnostic steps to obtain a robust Bayesian result and avoid misuse of Bayesian statistics. Finally, discussions cover the probability principle in Bayesian analysis and how to interpret its result to encourage Indonesian psychological scientists to implement Bayesian as an alternative to data analysis.
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心理学研究中的贝叶斯统计
心理数据分析的关键发展之一是贝叶斯实现。本文旨在介绍贝叶斯统计在心理学研究中的应用。以婚姻满意度和积极情感的数据集(n = 200)为例,比较了基于频率统计和贝叶斯统计的回归结果。数据分析考察了积极情绪对婚姻满意度的影响。基于先验信息和观测数据,结果表明,积极影响后验系数分布的均值为0.31,偏差标准为0.01,可信区间为0.30 ~ 0.33。该研究的结果提出了解释贝叶斯结果的独特方法。本文还概述了获得稳健贝叶斯结果和避免误用贝叶斯统计的诊断步骤。最后,讨论了贝叶斯分析中的概率原理,以及如何解释其结果,以鼓励印度尼西亚的心理学家将贝叶斯作为数据分析的替代方案。
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来源期刊
CiteScore
0.50
自引率
0.00%
发文量
8
审稿时长
16 weeks
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