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Towards an NLP-Based Topic Characterization of Social Relations

机译:迈向基于NLP的社会关系主题表征

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The unstructured text content of online communication artifacts is a salient source of information about social relationships. We investigate the utility of keywords extracted from the message body as a representation of the relationship's characteristics, which are reflected by the conversation topics to a certain extent. Keyword extraction is performed using standard natural language processing methods. Communication data and human assessments of the extracted keywords are obtained from Facebook users via a custom application. The overall positive quality assessment provides evidence that the keywords indeed convey relevant information about the relationship. This kind of representation may be of value for various computational tasks from the domain of social computing.
机译:在线交流工件的非结构化文本内容是有关社会关系信息的重要来源。我们调查了从消息正文中提取的关键字作为关系特征的表示的实用性,这些特性在一定程度上被对话主题所反映。关键字提取是使用标准自然语言处理方法执行的。通过自定义应用程序从Facebook用户获取通信数据和对提取的关键字的人工评估。总体积极的质量评估提供了证据,表明关键字确实传达了有关该关系的相关信息。这种表示形式对于社交计算领域的各种计算任务可能具有价值。

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