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Combining data-oriented and process-oriented approaches to modeling reaction time data

机译:将面向数据和过程导向的方法与建模反应时间数据相结合

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This paper combines two different approaches to modeling reaction time data from lexical decision experiments, viz. a data-oriented statistical analysis by means of a linear mixed effects model, and a process-oriented computational model of human speech comprehension. The linear mixed effect model is implemented by lmer in R. As computational model we apply DIANA, an end-to-end computational model which aims at modeling the cognitive processes underlying speech comprehension. DIANA takes as input the speech signal, and provides as output the orthographic transcription of the stimulus, a word/non-word judgment and the associated reaction time. Previous studies have shown that DIANA shows good results for large-scale lexical decision experiments in Dutch and North-American English. We investigate whether predictors that appear significant in an lmer analysis and processes implemented in DIANA can be related and inform both approaches. Predictors such as 'previous reaction time' can be related to a process description; other predictors, such as 'lexical neighborhood' are hard-coded in lmer and emergent in DIANA. The analysis focuses on the interaction between subject variables and task variables in lmer, and the ways in which these interactions can be implemented in DIANA.
机译:本文将两种不同的方法与词汇决策实验,viz结合起来建模反应时间数据。通过线性混合效应模型和以过程为导向的人类语音理解计算模型的数据导向的统计分析。线性混合效果模型由RMMER实施。作为计算模型,我们应用Diana,一个端到端计算模型,旨在建模言论理解的认知过程。戴安娜作为输入语音信号,并作为输出刺激的正交转录,单词/非词汇判断和相关的反应时间。以前的研究表明,戴安娜对荷兰语和北美英语的大规模词汇决策实验表现出良好的结果。我们调查戴安纳实施的LMEM分析和过程中显得显着的预测因子是否可以与两种方法相关联。诸如“先前反应时间”之类的预测因子可以与过程描述有关;其他预测因子,例如“词汇邻居”在LMOR中是硬编码的,并在戴安娜中涌现。该分析侧重于LMOR中对象变量和任务变量之间的相互作用,以及这些交互可以在戴安娜中实现的方式。

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