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Form and Function of Hand Gestures for Interpretation and Generation

机译:用于解释和生成的手势的形式和功能

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This paper investigates the relation between the form and function of hand gestures in audio and video recordings of American and English political iscourse of different type. Gestures have an important function in face-to-face communication contributing to the successful delivery of the message by reinforcing what is expressed by speech or by adding new information to what is uttered. The relation between form and function of gestures has been described by some of the pioneers of gestural studies. However, since gestures are multifunctional and they must be interpreted in context, it is important to investigate to what extent the form of gestures can be used to interpret their function automatically. Individuating the relation between form and function of gestures is also important for generating appropriate gestures in various communicative situations and this knowledge is vital for the integration of machine-human communicative and cognitive functions. In this paper we show that the automatic classification of the semiotic types of hand gestures using their shape description is quite successful and this is an important step towards their interpretation in face-to-face communication as well as their interpretation and generation in advanced multimodal interactive systems. More specifically in the present work we annotated the semiotic types of hand gestures produced by five politicians in different contexts, adding this information to existing multimodal annotations. Then, we trained machine learning algorithms to identify the semiotic type of the hand gestures. The F1 score obtained by the best performing algorithms on the classification of four semiotic types is 0.7 outperforming the F1 score of 0.59 obtained in a preceding pilot study which addressed the identification of three semiotic types of hand gestures produced by a speaker in a small dataset.
机译:本文研究了美国和英国不同类型政治场所的音频和视频记录中手势的形式和功能之间的关系。手势在面对面交流中起着重要的作用,它通过增强语音所表达的内容或向所表达的内容添加新的信息,从而有助于成功地传递消息。手势研究的一些先驱已经描述了手势的形式和功能之间的关系。但是,由于手势是多功能的,并且必须在上下文中进行解释,因此重要的是要研究手势的形式可以用来自动解释其功能的程度。区分手势的形式和功能之间的关系对于在各种交流情况下生成适当的手势也很重要,并且此知识对于集成人机交流和认知功能至关重要。在本文中,我们证明了使用手势形状符号对手势的符号类型进行自动分类是非常成功的,这是朝着手势进行面对面交流以及在高级多模式交互中进行解释和生成的重要一步。系统。更具体地说,在当前工作中,我们注释了五名政客在不同背景下产生的手势的符号类型,并将此信息添加到现有的多模式注释中。然后,我们训练了机器学习算法来识别手势的符号类型。通过对四种符号学类型进行分类的最佳性能算法获得的F1得分优于在先前的先导研究中获得的F1得分0.59,后者针对的是在小型数据集中识别说话者产生的三种手势的手势。

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