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Predicting an individual's gestures from the interlocutor's co-occurring gestures and related speech

机译:根据对话者同时出现的手势和相关语音来预测个人的手势

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Overlapping speech and gestures are common in face-to-face conversations and have been interpreted as a sign of synchronization between conversation participants. A number of gestures are even mirrored or mimicked. Therefore, we hypothesize that the gestures of a subject can contribute to the prediction of gestures of the same type of the other subject. In this work, we also want to determine whether the speech segments to which these gestures are related to contribute to the prediction. The results of our pilot experiments show that a Naive Bayes classifier trained on the duration and shape features of head movements and facial expressions contributes to the identification of the presence and shape of head movements and facial expressions respectively. Speech only contributes to prediction in the case of facial expressions. The obtained results show that the gestures of the interlocutors are one of the numerous factors to be accounted for when modeling gesture production in conversational interactions and this is relevant to the development of socio-cognitive ICT.
机译:重叠的语音和手势在面对面的对话中很常见,并且已被解释为对话参与者之间同步的标志。许多手势甚至被镜像或模仿。因此,我们假设一个对象的手势可以有助于预测其他对象的相同类型的手势。在这项工作中,我们还想确定与这些手势相关的语音段是否有助于预测。我们的实验结果表明,对头部运动和面部表情的持续时间和形状特征进行训练的朴素贝叶斯分类器分别有助于识别头部运动和面部表情的存在和形状。仅在面部表情的情况下,语音才有助于预测。获得的结果表明,对话者的手势是在对话交互中建模手势产生时要考虑的众多因素之一,这与社会认知ICT的发展有关。

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