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Friends in Low-Entropy Places: Orthographic Neighbor Effects on Visual Word Identification Differ Across Letter Positions

机译:低熵的朋友:正交邻居对视觉单词识别的影响差异横跨字母位置

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摘要

Visual word recognition is facilitated by the presence of orthographic neighbors that mismatch the target word by a single letter substitution. However, researchers typically do not consider where neighbors mismatch the target. In light of evidence that some letter positions are more informative than others, we investigate whether the influence of orthographic neighbors differs across letter positions. To do so, we quantify the number of enemies at each letter position (how many neighbors mismatch the target word at that position). Analyses of reaction time data from a visual word naming task indicate that the influence of enemies differs across letter positions, with the negative impacts of enemies being most pronounced at letter positions where readers have low prior uncertainty about which letters they will encounter (i.e., positions with low entropy). To understand the computational mechanisms that give rise to such positional entropy effects, we introduce a new computational model, VOISeR (Visual Orthographic Input Serial Reader), which receives orthographic inputs in parallel and produces an over-time sequence of phonemes as output. VOISeR produces a similar pattern of results as in the human data, suggesting that positional entropy effects may emerge even when letters are not sampled serially. Finally, we demonstrate that these effects also emerge in human subjects' data from a lexical decision task, illustrating the generalizability of positional entropy effects across visual word recognition paradigms. Taken together, such work suggests that research into orthographic neighbor effects in visual word recognition should also consider differences between letter positions.
机译:通过单个字母替换,通过对位邻居的存在促进了视觉字识别,这些邻居通过单字母替换不匹配目标字。然而,研究人员通常不认为邻居在目标中不匹配。根据证据表明一些字母的职位比其他人更丰富,我们调查正交邻居的影响是否与字母位置不同。为此,我们量化每个字母位置的敌人数量(在该位置处的目标字不匹配有多少邻居)。来自视觉单词命名任务的反应时间数据分析表明敌人的影响与字母位置的影响不同,敌人在信件位置上最明显的负面影响是读者遇到的那些字母(即位置)低熵)。要了解产生这种位置熵效应的计算机制,我们介绍了一种新的计算模型,Voiser(视觉正交输入串行读取器),其并行地接收正交输入并产生量的音素序列作为输出。 Voiser在人类数据中产生类似的结果模式,表明即使在没有串行对字母进行采样时,位置熵效应也可能出现。最后,我们证明这些效果也从词汇决定任务中出现了人类对象的数据,说明了跨视觉字识别范例的位置熵效应的概括性。在一起,这些工作表明,在视觉字识别中研究了正交邻居效果,还应考虑字母位置之间的差异。

著录项

  • 来源
    《Cognitive science》 |2020年第12期|e12917.1-e12917.31|共31页
  • 作者单位

    Univ Connecticut Dept Psychol Sci 406 Babbidge Rd Unit 1020 Storrs CT 06269 USA|Connecticut Inst Brain & Cognit Sci Storrs CT USA;

    Univ Connecticut Dept Psychol Sci 406 Babbidge Rd Unit 1020 Storrs CT 06269 USA;

    Univ Connecticut Dept Psychol Sci 406 Babbidge Rd Unit 1020 Storrs CT 06269 USA|Connecticut Inst Brain & Cognit Sci Storrs CT USA|Haskins Labs Inc New Haven CT USA;

    Univ Connecticut Dept Psychol Sci 406 Babbidge Rd Unit 1020 Storrs CT 06269 USA|Connecticut Inst Brain & Cognit Sci Storrs CT USA|Haskins Labs Inc New Haven CT USA;

  • 收录信息 美国《科学引文索引》(SCI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Visual word recognition; Orthographic neighbor; Letter position; Entropy; Computational modeling;

    机译:视觉字识别;正交邻居;字母位置;熵;计算建模;

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