学术界和媒体对新冠肺炎态度反应的话语动力学探索

IF 1.6 2区 文学 N/A LANGUAGE & LINGUISTICS
Jihua Dong, L. Buckingham, Hao Wu
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引用次数: 4

摘要

本研究采用话语动力学方法,从新冠肺炎语料库和冠状病毒语料库中分析了学术和媒体话语中与新冠肺炎相关的态度定位。这种方法的基础是复杂动态系统理论(CDST),我们使用它来研究跨时间段(时间尺度)的话语事件的话语实践。该分析确定了态度标记的显著差异和态度定位的显著发展模式;姿态构建的发展轨迹是一种非线性的发展模式,具有波动性和可变性。我们还发现态度标志物的使用与新冠肺炎报告病例之间存在动态相互作用。在方法论上,我们展示了话语动力学方法与语料库语言学的结合如何通过识别目标语言特征随时间的发展模式,以及这些语言特征与重要社会因素的相互联系,来加强数据的社会语境化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A discourse dynamics exploration of attitudinal responses towards COVID-19 in academia and media
This study analyzes attitudinal positioning in academic and media discourse pertaining to COVID-19 from the COVID-19 Corpus and Coronavirus Corpus, using a discourse dynamics approach. Underpinning this approach is the Complex Dynamic Systems Theory (CDST), which we employ to examine the discursive practices of a discourse event across time periods (timescales). The analysis identified significant differences in attitudinal markers and noteworthy developmental patterns in attitude positioning; the developmental trajectories of attitude construction were characterized by a nonlinear developmental pattern subject to fluctuations and variability. We also discerned the existence of dynamic interaction between the uses of attitudinal markers and the reported cases of COVID-19. Methodologically, we demonstrate how the integration of the discourse dynamics approach with corpus linguistics strengthens the social contextualization of data by enabling the identification of developmental patterns of targeted language features over time, and the interconnections of these language features with contextually important social factors.
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来源期刊
CiteScore
3.30
自引率
0.00%
发文量
43
期刊介绍: The International Journal of Corpus Linguistics (IJCL) publishes original research covering methodological, applied and theoretical work in any area of corpus linguistics. Through its focus on empirical language research, IJCL provides a forum for the presentation of new findings and innovative approaches in any area of linguistics (e.g. lexicology, grammar, discourse analysis, stylistics, sociolinguistics, morphology, contrastive linguistics), applied linguistics (e.g. language teaching, forensic linguistics), and translation studies. Based on its interest in corpus methodology, IJCL also invites contributions on the interface between corpus and computational linguistics.
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