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Textual Affect Sensing for Sociable and Expressive Online Communication

机译:社交和表达性在线交流的文本情感感知

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In this paper, we address the tasks of recognition and interpretation of affect communicated through text messaging. The evolving nature of language in online conversations is a main issue in affect sensing from this media type, since sentence parsing might fail while syntactical structure analysis. The developed Affect Analysis Model was designed to handle not only correctly written text, but also informal messages written in abbreviated or expressive manner. The proposed rule-based approach processes each sentence in sequential stages, including symbolic cue processing, detection and transformation of abbreviations, sentence parsing, and word/phrase/sentence-level analyses. In a study based on 160 sentences, the system result agrees with at least two out of three human annotators in 70% of the cases. In order to reflect the detected affective information and social behaviour, an avatar was created.
机译:在本文中,我们解决了识别和解释通过文本消息传递的情感的任务。在线对话中语言的不断发展的性质是从这种媒体类型感测情感的一个主要问题,因为在语法结构分析过程中句子解析可能会失败。开发的“情感分析模型”不仅可以处理正确编写的文本,还可以处理以缩写或表达方式编写的非正式消息。提出的基于规则的方法按顺序处理每个句子,包括符号提示处理,缩写的检测和转换,句子解析以及词/短语/句子级分析。在一项基于160个句子的研究中,系统结果与70%的案例中至少三分之二的人类注释者一致。为了反映检测到的情感信息和社交行为,创建了一个化身。

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