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The role of textual semantic constraints in knowledge-based inference generation during reading comprehension: A computational approach

机译:文本语义约束在阅读理解过程中基于知识的推理生成中的作用:一种计算方法

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The present research adopted a computational approach to explore the extent to which the semantic content of texts constrains the activation of knowledge-based inferences. Specifically, we examined whether textual semantic constraints (TSC) can explain (1) the activation of predictive inferences, (2) the activation of bridging inferences and (3) the higher prevalence of the activation of bridging inferences compared to predictive inferences. To examine these hypotheses, we computed the strength of semantic associations between texts and probe items as presented to human readers in previous behavioural studies, using the Latent Semantic Analysis (LSA) algorithm. We tested whether stronger semantic associations are observed for inferred items compared to control items. Our results show that in 15 out of 17 planned comparisons, the computed strength of semantic associations successfully simulated the activation of inferences. These findings suggest that TSC play a central role in the activation of knowledge-based inferences.
机译:本研究采用一种计算方法来探索文本的语义内容在多大程度上限制了基于知识的推理的激活。具体来说,我们研究了文本语义约束(TSC)是否可以解释(1)预测推理的激活,(2)桥接推理的激活,以及(3)与预测推理相比,桥接推理的激活的普遍性更高。为了检验这些假设,我们使用潜在语义分析(LSA)算法,计算了在先前的行为研究中呈现给人类读者的文本与探测项目之间的语义关联强度。我们测试了与对照项目相比,是否对推断项目观察到了更强的语义关联。我们的结果表明,在17个计划的比较中,有15个比较了语义关联的计算强度,成功地模拟了推理的激活。这些发现表明,TSC在激活基于知识的推理中起着核心作用。

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