Towards the Detection and Formal Representation of Semantic Shifts in Inflectional Morphology

Dagmar Gromann, Thierry Declerck
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引用次数: 6

Abstract

Semantic shifts caused by derivational morphemes is a common subject of investigation in language modeling, while inflectional morphemes are frequently portrayed as semantically more stable. This study is motivated by the previously established observation that inflectional morphemes can be just as variable as derivational ones. For instance, the English plural “-s” can turn the fabric silk into the garments of a jockey, silks. While humans know that silk in this sense has no plural, it takes more for machines to arrive at this conclusion. Frequently utilized computational language resources, such as WordNet, or models for representing computational lexicons, like OntoLex-Lemon, have no descriptive mechanism to represent such inflectional semantic shifts. To investigate this phenomenon, we extract word pairs of different grammatical number from WordNet that feature additional senses in the plural and evaluate their distribution in vector space, i.e., pre-trained word2vec and fastText embeddings. We then propose an extension of OntoLex-Lemon to accommodate this phenomenon that we call inflectional morpho-semantic variation to provide a formal representation accessible to algorithms, neural networks, and agents. While the exact scope of the problem is yet to be determined, this first dataset shows that it is not negligible. 2012 ACM Subject Classification Information systems
屈折形态语义转换的检测与形式表征
衍生语素引起的语义转移是语言建模中常见的研究主题,而屈折语素往往被描述为语义更稳定。这项研究的动机是先前建立的观察,即屈折语素可以和衍生语素一样可变。例如,英语的复数“-s”可以把丝绸变成骑师的衣服,丝绸。虽然人类知道丝绸在这个意义上没有复数形式,但机器需要更多的时间才能得出这个结论。经常使用的计算语言资源(如WordNet)或表示计算词汇的模型(如OntoLex-Lemon)都没有描述机制来表示这种屈折语义转换。为了研究这一现象,我们从WordNet中提取了具有复数附加意义的不同语法数的单词对,并评估了它们在向量空间中的分布,即预训练的word2vec和fastText嵌入。然后,我们提出了OntoLex-Lemon的扩展,以适应这种我们称之为屈折形态语义变化的现象,从而为算法、神经网络和代理提供可访问的形式化表示。虽然这个问题的确切范围尚未确定,但第一个数据集表明它不容忽视。2012 ACM主题分类信息系统
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