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首页> 外文期刊>The quarterly journal of experimental psychology: QJEP >Decomposing encoding and decisional components in visual-word recognition: A diffusion model analysis
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Decomposing encoding and decisional components in visual-word recognition: A diffusion model analysis

机译:分解视觉单词识别中的编码和决策组件:扩散模型分析

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In a diffusion model, performance as measured by latency and accuracy in two-choice tasks is decomposed into different parameters that can be linked to underlying cognitive processes. Although the diffusion model has been utilized to account for lexical decision data, the effects of stimulus manipulations in previous experiments originated from just one parameter: the quality of the evidence. Here we examined whether the diffusion model can be used to effectively decompose the underlying processes during visual-word recognition. We explore this issue in an experiment that features a lexical manipulation (word frequency) that we expected to affect mostly the quality of the evidence (the drift rate parameter), and a perceptual manipulation (stimulus orientation) that presumably affects the nondecisional time (the T_(er) parameter, time of encoding and response) more than it affects the drift rate. Results showed that although the manipulations do not affect only one parameter, word frequency and stimulus orientation had differential effects on the model’s parameters. Thus, the diffusion model is a useful tool to decompose the effects of stimulus manipulations in visual-word recognition.
机译:在扩散模型中,将通过两项选择任务中的等待时间和准确性衡量的性能分解为可链接到基本认知过程的不同参数。尽管已经使用扩散模型来解释词汇决策数据,但是在先前的实验中,刺激操作的效果仅源自一个参数:证据的质量。在这里,我们检查了扩散模型是否可用于有效地分解视觉单词识别过程中的基础过程。我们在一个实验中探讨了这个问题,该实验的特点是我们预期会主要影响证据质量(漂移率参数)的词法操纵(词频)和大概会影响非决定性时间(即T_(er)参数,编码时间和响应时间)远大于它对漂移率的影响。结果表明,尽管这些操作不仅只影响一个参数,但单词频率和刺激方向对模型的参数有不同的影响。因此,扩散模型是分解视觉单词识别中刺激操作效果的有用工具。

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