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Quantitative analysis of non-verbal communication for competence analysis

机译:竞争力分析的非言语交流的定量分析

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Oral communication competence is defined on the top of relevant skills for professional and personal life. Because of the importance of communication in our daily activities it is crucial to study methods to improve our communication capability and therefore learn how to express ourselves better. In this paper, we propose a multi-modal RGB, depth, and audio data description and fusion approach in order to recognize behavioral cues and train classifiers able to predict the quality of oral presentations. The system is tested on real defenses from Bachelor's thesis presentations and presentations from an 8th semester Bachelor's class at Universitat de Barcelona. Using as ground truth the scores assigned by the teachers, our system achieved high classification rates categorizing and ranking the quality of presentations into different groups.
机译:口头沟通能力是在专业和个人生活的相关技能之上定义的。由于在日常活动中沟通的重要性,研究方法来提高我们的通信能力至关重要,从而了解如何更好地表达自己。在本文中,我们提出了一种多模态RGB,深度和音频数据描述和融合方法,以识别能够预测口腔呈现质量的行为提示和火车分类器。该系统在学士学位的论文演示和第8个学期学士学位课程的实际防御中进行了测试,在巴塞罗那大学的第8个学期的学士学位。随着地面真理使用教师分配的分数,我们的系统实现了高分类率,分类和将演示的质量排名为不同的群体。

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