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Multimodal Analysis of the Implicit Affective Channel in Computer-Mediated Textual Communication

机译:计算机介导的文本交流中隐性情感渠道的多模态分析

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Computer-mediated textual communication has become ubiquitous in recent years. Compared to face-to-face interactions, there is decreased bandwidth in affective information, yet studies show that interactions in this medium still produce rich and fulfilling affective outcomes. While overt communication (e.g., emoticons or explicit discussion of emotion) can explain some aspects of affect conveyed through textual dialogue, there may also be an underlying implicit affective channel through which participants perceive additional emotional information. To investigate this phenomenon, computer-mediated tutoring sessions were recorded with Kinect video and depth images and processed with novel tracking techniques for posture and hand-to-face gestures. Analyses demonstrated that tutors implicitly perceived students' focused attention, physical demand, and frustration. Additionally, bodily expressions of posture and gesture correlated with student cognitive-affective states that were perceived by tutors through the implicit affective channel. Finally, posture and gesture complement each other in multimodal predictive models of student cognitive-affective states, explaining greater variance than either modality alone. This approach of empirically studying the implicit affective channel may identify details of human behavior that can inform the design of future textual dialogue systems modeled on naturalistic interaction.
机译:近年来,计算机介导的文本交流变得无处不在。与面对面的互动相比,情感信息的带宽减少了,但是研究表明,在这种媒介中的互动仍然会产生丰富而充实的情感结果。虽然公开交流(例如表情符号或情感的显式讨论)可以解释通过文本对话传达的情感的某些方面,但也可能存在潜在的潜在情感渠道,参与者可以通过此渠道感知其他情感信息。为了调查这种现象,用Kinect视频和深度图像记录了计算机介导的辅导会话,并使用了新颖的姿势和手对脸手势跟踪技术对其进行了处理。分析表明,导师暗中察觉了学生的注意力,身体需求和挫败感。此外,姿势和手势的身体表达与导师通过隐性情感渠道感知到的学生认知情感状态相关。最后,在学生认知情感状态的多模式预测模型中,姿势和手势可以相互补充,从而说明了比单独使用任何一种模式都更大的差异。这种以经验的方式研究隐式情感渠道的方法可以识别人类行为的细节,这些细节可以为未来基于自然主义互动建模的文本对话系统的设计提供信息。

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