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Does complexity matter? Meta-analysis of learner performance in artificial grammar tasks

机译:复杂性重要吗?人工语法任务中学习者表现的荟萃分析

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摘要

Complexity has been shown to affect performance on artificial grammar learning (AGL) tasks (categorization of test items as grammatical/ungrammatical according to the implicitly trained grammar rules). However, previously published AGL experiments did not utilize consistent measures to investigate the comprehensive effect of grammar complexity on task performance. The present study focused on computerizing Bollt and Jones's () technique of calculating topological entropy (TE), a quantitative measure of AGL charts' complexity, with the aim of examining associations between grammar systems' TE and learners' AGL task performance. We surveyed the literature and identified 56 previous AGL experiments based on 10 different grammars that met the sampling criteria. Using the automated matrix-lift-action method, we assigned a TE value for each of these 10 previously used AGL systems and examined its correlation with learners' task performance. The meta-regression analysis showed a significant correlation, demonstrating that the complexity effect transcended the different settings and conditions in which the categorization task was performed. The results reinforced the importance of using this new automated tool to uniformly measure grammar systems' complexity when experimenting with and evaluating the findings of AGL studies.
机译:事实表明,复杂性会影响人工语法学习(AGL)任务的性能(根据隐式训练的语法规则将测试项目分类为语法/非语法)。但是,以前发布的AGL实验没有利用一致的方法来研究语法复杂性对任务性能的综合影响。本研究的重点是计算机化Bollt和Jones()的计算拓扑熵(TE)的技术,该技术是对AGL图表复杂性的定量度量,目的是检查语法系统的TE与学习者的AGL任务绩效之间的关联。我们调查了文献,并基于10个满足采样标准的语法,确定了56个以前的AGL实验。我们使用自动化的矩阵提举动作方法,为这10个先前使用的AGL系统中的每一个分配了一个TE值,并检查了它与学习者的任务绩效之间的相关性。元回归分析显示出显着的相关性,表明复杂性效应超越了执行分类任务的不同设置和条件。结果强调了在试验和评估AGL研究的结果时,使用这种新的自动化工具来统一测量语法系统的复杂性的重要性。

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