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Regression to causality: Regression-style presentation influences causal attribution:

机译:回归因果关系:回归样式表示会影响因果归因:

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Humans are fundamentally primed for making causal attributions based on correlations. This implies that researchers must be careful to present their results in a manner that inhibits unwarranted causal attribution. In this paper, we present the results of an experiment that suggests regression models a?? one of the primary vehicles for analyzing statistical results in political science a?? encourage causal interpretation. Specifically, we demonstrate that presenting observational results in a regression model, rather than as a simple comparison of means, makes causal interpretation of the results more likely. Our experiment drew on a sample of 235 university students from three different social science degree programs (political science, sociology and economics), all of whom had received substantial training in statistics. The subjects were asked to compare and evaluate the validity of equivalent results presented as either regression models or as a t-test of two sample means. Our experiment shows that the subjects who were presented with results as estimates from a regression model were more inclined to interpret these results causally. Our experiment implies that scholars using regression models should note carefully both their modelsa?? identifying assumptions and which causal attributions can safely be concluded from their analysis.
机译:从根本上说,人类是根据相关性做出因果归因的。这意味着研究人员必须小心谨慎地以抑制不必要的因果归因的方式展示其结果。在本文中,我们介绍了一个建议回归模型的实验结果。政治科学中统计结果分析的主要工具之一?鼓励因果解释。具体而言,我们证明了在回归模型中呈现观察结果,而不是作为均值的简单比较,使得对结果进行因果解释的可能性更高。我们的实验从三个不同的社会科学学位课程(政治科学,社会学和经济学)的235名大学生中抽取样本,他们全部都接受了统计学方面的大量培训。要求受试者比较和评估以回归模型或两个样本均值的t检验表示的等效结果的有效性。我们的实验表明,被提供以回归模型估算结果的受试者更倾向于因果解释这些结果。我们的实验表明,使用回归模型的学者应仔细注意两个模型。确定假设,并从其分析中可以安全地得出哪些因果归因。

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