Composition as Nonlinear Combination in Semantic Space: A Computational Characterization of Compound Processing

计算机科学 代表(政治) 语义学(计算机科学) 自然语言处理 过程(计算) 人工智能 作文(语言) 理解力 性格(数学) 复合物 空格(标点符号) 表征(材料科学) 词(群论) 组分(热力学) 语言学 数学 材料科学 物理 纳米技术 哲学 几何学 政治 政治学 法学 热力学 程序设计语言 操作系统
作者
Tianqi Wang,Xu Xu
出处
期刊:Cognitive Science [Wiley]
卷期号:49 (2)
标识
DOI:10.1111/cogs.70039
摘要

Abstract Most Chinese words are compounds formed through the combination of meaningful characters. Yet, due to compositional complexity, it is poorly understood how this combinatorial process affects the access to the whole‐word meaning. In the present study, we turned to the recent development in compositional distributional semantics, and employed a deep neural network to learn the less‐than‐systematic relationship between the constituent characters and the compound words. Based on the compositional representations derived from the computational model, we investigated the combinatorial process in terms of the degree of overlap between the compositional and the lexicalized representations as well as the degree of distinctness of the compositional representation. Analyses of lexical decision and eye‐tracking data revealed the effects of both compositional attributes over and above the effects of constituent character features and compound features, indicating an active engagement of the combinatorial process in compound processing. Moreover, with the increase of compound frequency, and thus the increased likelihood that the holistic route prevails, these compositional effects appeared to be dampened. These findings, therefore, provided a computational characterization for the dual‐route framework, which sheds light on the universal process of compound comprehension across different languages.
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