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Tuning in to non-adjacencies: Exposure to learnable patterns supports discovering otherwise difficult structures

机译:调整非邻接:接触学习模式支持发现纠正结构

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摘要

Non-adjacent dependencies are ubiquitous in language, but difficult to learn in artificial language experiments in the lab. Previous research suggests that non-adjacent dependencies are more learnable given structural support in the input - for instance, in the presence of high variability between dependent items. However, not all non-adjacent dependencies occur in supportive contexts. How are such regularities learned? One possibility is that learning one set of non-adjacent dependencies can highlight similar structures in subsequent input, facilitating the acquisition of new non-adjacent dependencies that are otherwise difficult to learn. In three experiments, we show that prior exposure to learnable non-adjacent dependencies - i.e., dependencies presented in a learning context that has been shown to facilitate discovery - improves learning of novel non-adjacent regularities that are typically not detected. These findings demonstrate how the discovery of complex linguistic structures can build on past learning in supportive contexts.
机译:非相邻的依赖性是普遍存在的语言,但难以在实验室的人工语言实验中学习。以前的研究表明,非相邻的依赖性在输入中的结构支持更加学习 - 例如,在依赖项之间存在高可变性的情况下。但是,并非所有非相邻的依赖项都发生在支持性上下文中。这些规律如何学到?一种可能性是学习一组非相邻的依赖关系可以在后续输入中突出显示类似的结构,促进获取否则难以学习的新的非相邻的依赖关系。在三个实验中,我们表明,在学习环境中出现的学习非相邻依赖性的依赖性,所示的依赖性被证明促进发现 - 改善了通常未检测到的新型非相邻规律性的学习。这些调查结果表明了复杂语言结构的发现如何在支持性环境中以过去学习建立。

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