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A diffusion decision model analysis of evidence variability in the lexical decision task

机译:词汇决策任务中证据变异的扩散决策模型分析

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AbstractThe lexical-decision task is among the most commonly used paradigms in psycholinguistics. In both the signal-detection theory and Diffusion Decision Model (DDM; Ratcliff, Gomez, & McKoon,Psychological Review, 111, 159–182, 2004) frameworks, lexical-decisions are based on a continuous source of word-likeness evidence for both words and non-words. The Retrieving Effectively from Memory model of Lexical-Decision (REM–LD; Wagenmakers et al.,Cognitive Psychology, 48(3), 332–367, 2004) provides a comprehensive explanation of lexical-decision data and makes the prediction that word-likeness evidence is more variable for words than non-words and that higher frequency words are more variable than lower frequency words. To test these predictions, we analyzed five lexical-decision data sets with the DDM. For all data sets, drift-rate variability changed across word frequency and non-word conditions. For the most part, REM–LD’s predictions about the ordering of evidence variability across stimuli in the lexical-decision task were confirmed.]]>
机译:<![cdata [ <标题>抽象 ara>词汇决策任务是精神语言学中最常用的范例之一。在信号检测理论和扩散决策模型(DDM; Ratcliff,Gomez,&Mckoon,心理审查,111 ,159-182,2004)框架,词汇决策是基于单词和非单词的单词相似证据的连续来源。有效地从词汇决策的记忆模型中检索(REM-LD; Wagenmakers等,<重点类型=“斜体”>认知心理学,48 (3),332-367,2004)提供了全面的解释词汇决策数据并使得预测字词相似度证据比非单词更具变量,并且较高的频率词比较低频率单词更具变量。要测试这些预测,我们将使用DDM分析五个词汇决策数据集。对于所有数据集,漂移速率变化在字频率和非字条件下更改。在大多数情况下,REM-LD对词汇决策任务中刺激措施的可变性的排序的预测得到了确认。 ]]>

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