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SCENE: Structural Conversation Evolution NEtwork

机译:场景:结构对话进化网络

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摘要

It's not just what you say, but it is how you say it. To date, the majority of the Instant Message (IM) analysis and research has focused on the content of the conversation. The main research question has been, `what do people talk about?' focusing on topic extraction and topic modeling. While content is clearly critical for many real-world applications, we have largely ignored identifying `how' people communicate. Conversation structure and communication patterns provide deep insight into how conversations evolve, and how the content is shared. Motivated by theoretical work from psychology and linguistics in the area of conversation alignment, we introduce SCENE, an evolution network approach to extract knowledge from a conversation network. We demonstrate the potential of our approach by taking the task of matching conversation partners. We find that SCENE is more successful because, in contrast to existing approaches, SCENE treats a conversation as an evolving, rather than a static document, and focuses on the structural elements of the conversation instead of being tied to the specific content.
机译:这不仅是您所说的,而且是您所说的。迄今为止,大多数即时消息(IM)分析和研究都集中在对话的内容上。主要的研究问题是,“人们在谈论什么?”专注于主题提取和主题建模。尽管内容显然对许多现实应用至关重要,但我们在很大程度上忽略了确定人们如何“交流”的方式。对话结构和交流模式可深入了解对话的发展方式以及内容的共享方式。受会话对齐领域中来自心理学和语言学的理论研究的启发,我们引入了SCENE,这是一种从会话网络中提取知识的进化网络方法。通过承担匹配对话伙伴的任务,我们证明了该方法的潜力。我们发现SCENE更为成功,因为与现有方法相比,SCENE将对话视为不断发展的文档,而不是静态文档,并专注于对话的结构元素,而不是与特定内容联系在一起。

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