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Mapping Twitter hate speech towards social and sexual minorities: a lexicon-based approach to semantic content analysis

机译:映射Twitter讨厌言论,以社会和性少数群体:基于词汇的语义内容分析方法

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摘要

Though there are currently no statistics offering a global overview of online hate speech, both social networking platforms and organisations that combat hate speech have recognised that prevention strategies are needed to address this negative online phenomenon. While most cases of online hate speech target individuals on the basis of ethnicity and nationality, incitements to hatred on the basis of religion, class, gender and sexual orientation are increasing. This paper reports the findings of the 'Italian Hate Map' project, which used a lexicon-based method of semantic content analysis to extract 2,659,879 Tweets (from 879,428 Twitter profiles) over a period of 7 months; 412,716 of these Tweets contained negative terms directed at one of the six target groups. In the geolocalized Tweets, women were the most insulted group, having received 71,006 hateful Tweets (60.4% of the negative geolocalized tweets), followed by immigrants (12,281 tweets, 10.4%), gay and lesbian persons (12,140 tweets, 10.3%), Muslims (7,465 tweets, 6.4%), Jews (7,465 tweets, 6.4%) and disabled persons (7,230 tweets, 6.1%). The findings provide a real-time snapshot of community behaviours and attitudes against social, ethnic, sexual and gender minority groups that can be used to inform intolerance prevention campaigns on both local and national levels.
机译:虽然目前没有统计数据提供在线仇恨言论的全球概述,但打击仇恨言论的社交网络平台和组织都认识到需要预防策略来解决这种负面在线现象。虽然大多数在线仇恨的案件言论目标是在种族和国籍的基础上,煽动宗教,课,性别和性取向的仇恨正在增加。本文报告了“意大利仇恨地图”项目的调查结果,它使用了基于词汇的语义内容分析方法,以提取2,659,879推文(从879,428个Twitter概况)在7个月内;这些推文中的412,712种包含在六个目标组之一的负术语。在地理化推文中,妇女是最令人震惊的小组,获得了71,006个可恶的推文(占消极地理化推文的60.4%),其次是移民(12,281推文,10.4%),同性恋和女同性恋人员(12,140推文,10.3%),穆斯林(7,465推文,6.4%),犹太人(7,465名推文,6.4%)和残疾人(7,230名推文,6.1%)。该调查结果提供了社区行为的实时快照,以及对社会,种族,性别和性别和性别少数群体的态度,这些群体可用于告知当地和国家层面的不可挽回的预防运动。

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