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The Refugee Experience Online: Surfacing Positivity Amidst Hate

机译:难民在线体验:讨厌中的阳性积极性

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How can Artificial Intelligence help a stateless minority from online abuse? Research efforts in hate speech detection thus far have largely focused on identifying and subsequently filtering out negative content that specifically targets them. In this paper, we highlight a recent work which tackles a different aspect of web-vulnerability of marginalized communities: sparsity of pro-minority voices championing their cause. The highlighted paper advocates that blocking hate alone may not be sufficient in these cases as the internet shapes community perception to a great extent in modern times and supportive comments to a vulnerable community serve a different purpose. Using an Active Sampling approach, the paper constructs a nuanced voice-for-the-voiceless classifier that automatically discovers comments supporting a (allegedly) persecuted minority. In the context of the Rohingya refugee crisis, one of the biggest humanitarian crises of modern times, the paper presents promising results that can substantially aid content moderation efforts in finding positive content supporting the Rohingyas.
机译:人工智能如何帮助在线滥用中的无国籍少数群体?迄今为止仇恨语音检测的研究努力主要集中在识别和随后过滤专门针对它们的负面内容。在本文中,我们突出了最近的一项工作,这些工作解决了边缘化社区的Web漏洞的不同方面:亲少数声音的诽谤冠军。突出的论文倡导者在这些情况下阻止仇恨可能在这些情况下可能在很大程度上在近代越来越多地对弱势社区提供了不同的目的而造成社区感知。使用活动采样方法,该文件构造了一个细微的用于无声的分类器,可以自动发现支持(据称)受缺陷的少数群体的评论。在弘扬难民危机的背景下,近代最大的人道主义危机之一,该论文提出了有希望的结果,可以在寻找支持卵黄岩的积极内容方面取得内容促进努力。

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