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德语复合词中的语义透明性效应:一个大型数据集和多任务研究。

Semantic transparency effects in German compounds: A large dataset and multiple-task investigation.

机构信息

University of Milano-Bicocca, Milan, Italy.

NeuroMI, Milan Center for Neuroscience, Milan, Italy.

出版信息

Behav Res Methods. 2020 Jun;52(3):1208-1224. doi: 10.3758/s13428-019-01311-4.

Abstract

In the present study, we provide a comprehensive analysis and a multi-dimensional dataset of semantic transparency measures for 1810 German compound words. Compound words are considered semantically transparent when the contribution of the constituents' meaning to the compound meaning is clear (as in airport), but the degree of semantic transparency varies between compounds (compare strawberry or sandman). Our dataset includes both compositional and relatedness-based semantic transparency measures, also differentiated by constituents. The measures are obtained from a computational and fully implemented semantic model based on distributional semantics. We validate the measures using data from four behavioral experiments: Explicit transparency ratings, two different lexical decision tasks using different nonwords, and an eye-tracking study. We demonstrate that different semantic effects emerge in different behavioral tasks, which can only be captured using a multi-dimensional approach to semantic transparency. We further provide the semantic transparency measures derived from the model for a dataset of 40,475 additional German compounds, as well as for 2061 novel German compounds.

摘要

在本研究中,我们提供了对 1810 个德语复合词的语义透明度测量的全面分析和多维数据集。当组成部分的意义对复合意义的贡献是清晰的时(如在 airport 中),复合词被认为是语义透明的,但复合词之间的语义透明度程度有所不同(比较 strawberry 或 sandman)。我们的数据集包括基于组成和相关性的语义透明度测量,也按组成部分进行区分。这些测量值是从基于分布语义的计算和完全实现的语义模型中获得的。我们使用来自四个行为实验的数据来验证这些测量值:显式透明度评级、使用不同非单词的两个不同词汇判断任务以及眼动研究。我们证明,不同的语义效应出现在不同的行为任务中,只能使用多维的语义透明度方法来捕捉。我们还为 40475 个额外的德语复合词数据集以及 2061 个新的德语复合词提供了从模型中得出的语义透明度测量值。

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