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A Post-Positivist Answering Back. Part 2: A Demo in R of the Importance of Enabling Replication in PLS and LISREL

机译:后实证主义者的回答。第2部分:R演示中的PLS和LISREL中的启用复制的重要性

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In Part 1 the argument was made for the core Positivist principle of enabling falsification, specifically that data, or at least correlation or covariance matrices, should be made public so that others can attempt to falsify at least the statistical analyses. Doing so could provide a semblance of the direction of what might constitute the desired Positivist aspects of intellectual integrity in science: making your claims and putting your data in the public domain so others may put its propositions to the test and try to falsify or improve on them.Part 2 demonstrates the importance of such disclosure. The demo begins with replicating the model in Structural Equation Modeling and Regression: Guidelines for Research Practice (Gefen et al., 2000) in PLS and CBSEM R packages, producing equivalent results as the original paper. Showing the point about the need to have the data in the public domain, a set of incorrectly specified models on the same data are then run. Both PLS and CBSEM converge and produce plausibly believable results if the data were not available to test alternative models, opening the possibility of pulling the wool over readers' eyes if such a correlation or covariance matrix is not provided.
机译:在第1部分中,论证了支持伪造的核心实证主义原则,特别是应该公开数据或至少相关或协方差矩阵,以便其他人至少可以伪造统计分析。这样做可以为可能构成科学知识完整性的理想的实证主义方面的方向提供相似的方向:提出您的主张并将您的数据置于公共领域,以便其他人可以对其主张进行考验,并尝试伪造或改进第二部分说明了这种披露的重要性。该演示首先在PLS和CBSEM R包中复制《结构方程式建模和回归:研究实践指南》(Gefen等,2000)中的模型,并产生与原始论文相同的结果。显示关于需要在公共域中存储数据的要点,然后运行对相同数据的一组错误指定的模型。如果没有可用数据测试替代模型,PLS和CBSEM都将收敛并产生可信的结果,如果没有提供这样的相关性或协方差矩阵,则有可能将羊毛拉到读者的眼中。

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