利用社交媒体上的语言特征自动预防网络欺凌的设计方法

Wanqi Li
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引用次数: 5

摘要

现有研究指出,信息和通信技术(ICT)使用的增加引入了新的平台,可以发生网络欺凌。大多数研究关注的是青少年网络欺凌的原因和后果,而很少关注网络欺凌的检测和预防,更少关注中文网络欺凌的检测。在这样的背景下,我们需要对信息过滤和监管采取道德的方法,并对语言特征和语言管理进行研究。本研究以新浪微博为例,重点研究网络欺凌中出现的语言特征,以及社交媒体网络欺凌内容管理和规范应包含的机器技术体系。基于语言管理理论(LMT),运用归纳性内容分析法对所选样本中的攻击性语言特征进行分析。该项目的研究结果将有助于完善理论,特别是关于攻击性信息和行为的理论,并有助于对网络欺凌和媒体的学术理解,包括检测、监管和治理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Design Approach for Automated Prevention of Cyberbullying Using Language Features on Social Media
Existing studies point out that the increased use of Information and Communication Technologies (ICT) has introduced new platforms, across which cyberbullying can occur. Most of the studies focus on the causes and consequences of cyberbullying among adolescents, however, few focus on the detection and prevention of cyberbullying, and even fewer focus on detecting cyberbullying in the Chinese language. Against this backdrop, an ethical approach to information filtering and regulation should be implemented and research into language features and language management is required. This research uses Sina Weibo as a case study, focusing on the features of language that occur in cyberbullying and the machine technique system that should be included as principles for managing and regulating cyberbullying contents on social media. Based on the Language Management Theory (LMT), inductive content analysis has been used to analyse offensive language features from the selected samples. The findings of this project will help refine theories, particularly those on offensive information and behaviour, and benefit academic understanding of cyberbullying and media, including the detection, regulation and governance.
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