A Pilot Study on the Collection and Computational Analysis of Linguistic Differences Amongst Men and Women in a Kuwaiti Arabic WhatsApp Dataset

Hesah Aldihan, R. Gaizauskas, S. Fitzmaurice
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引用次数: 1

Abstract

This study focuses on the collection and computational analysis of Kuwaiti Arabic (KA), which is considered a low resource dialect, to test different sociolinguistic hypotheses related to gendered language use. In this paper, we describe the collection and analysis of a corpus of WhatsApp Group chats with mixed gender Kuwaiti participants. This corpus, which we are making publicly available, is the first corpus of KA conversational data. We analyse different interactional and linguistic features to get insights about features that may be indicative of gender to inform the development of a gender classification system for KA in an upcoming study. Statistical analysis of our data shows that there is insufficient evidence to claim that there are significant differences amongst men and women with respect to number of turns, length of turns and number of emojis. However, qualitative analysis shows that men and women differ substantially in the types of emojis they use and in their use of lengthened words.
在科威特阿拉伯语WhatsApp数据集中收集和计算分析男女语言差异的试点研究
本研究的重点是科威特阿拉伯语(KA)的收集和计算分析,这被认为是一种低资源方言,以测试与性别语言使用相关的不同社会语言学假设。在本文中,我们描述了与混合性别科威特参与者WhatsApp群聊天语料库的收集和分析。我们公开提供的这个语料库是KA会话数据的第一个语料库。我们分析了不同的互动和语言特征,以了解可能指示性别的特征,为即将进行的研究中KA性别分类系统的开发提供信息。对我们数据的统计分析表明,没有足够的证据表明男性和女性在回合数、回合长度和表情符号数量方面存在显著差异。然而,定性分析表明,男性和女性在使用表情符号的类型和加长词的使用上存在很大差异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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