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估计关联和重编码在内隐联想测验中的贡献:IAT 的 ReAL 模型。

Estimating the contributions of associations and recoding in the Implicit Association Test: the ReAL model for the IAT.

机构信息

Institute of Psychology, Friedrich Schiller University Jena, Jena D-07743, Germany.

出版信息

J Pers Soc Psychol. 2013 Jan;104(1):45-69. doi: 10.1037/a0030734. Epub 2012 Nov 12.

Abstract

We introduce the ReAL model for the Implicit Association Test (IAT), a multinomial processing tree model that allows one to mathematically separate the contributions of attitude-based evaluative associations and recoding processes in a specific IAT. The ReAL model explains the observed pattern of erroneous and correct responses in the IAT via 3 underlying processes: recoding of target and attribute categories into a binary representation in the compatible block (Re), evaluative associations of the target categories (A), and label-based identification of the response that is assigned to the respective nominal category (L). In 7 validation studies, using an adaptive response deadline procedure in order to increase the amount of erroneous responses in the IAT, we demonstrated that the ReAL model fits IAT data and that the model parameters vary independently in response to corresponding experimental manipulations. Further studies yielded evidence for the specific predictive validity of the model parameters in the domain of consumer behavior. The ReAL model allows one to disentangle different sources of IAT effects where global effect measures based on response times lead to equivocal interpretations. Possible applications and implications for future IAT research are discussed.

摘要

我们介绍了 ReAL 模型,用于内隐联想测验(IAT),这是一种多项式处理树模型,允许人们在特定的 IAT 中从基于态度的评价性联想和重新编码过程中数学上分离贡献。ReAL 模型通过 3 个潜在过程来解释 IAT 中观察到的错误和正确反应模式:在兼容块中将目标和属性类别重新编码为二进制表示(Re)、目标类别的评价性联想(A)以及分配给相应名义类别的响应的基于标签的识别(L)。在 7 项验证研究中,我们使用自适应响应截止时间程序来增加 IAT 中的错误反应数量,证明了 ReAL 模型适合 IAT 数据,并且模型参数根据相应的实验操作独立变化。进一步的研究为模型参数在消费者行为领域的具体预测有效性提供了证据。ReAL 模型允许人们在基于反应时间的全局效应度量导致模棱两可解释的情况下,分解 IAT 效应的不同来源。讨论了该模型的可能应用和对未来 IAT 研究的影响。

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