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Socio-Cognitive Interaction Between Human and Computer/Robot for HCI 3.0

机译:HCI 3.0的人与计算机/机器人之间的社会认知互动

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With an increasing number of AI applications in everyday life, the discussion on how to improve the usability of AI or robot devices has been taking place. This is particularly true for Socially Assistive Robots (SAR). The presented study in this paper is an attempt to identify speech characteristics such as sound and lexical features among different personality groups, specifically per personality dimension of Myers-Briggs Type Indicator (MBTI). and to design an Artificial Neural Network reflecting the correlations found between speech characteristics and personality traits. The current study primarily reports the relationship between various speech characteristics (both mechanical and lexical) and personality dimensions identified in MBTI. Based on significant findings, an ANN (Artificial Neural Network) has been designed in an effort to predict personality traits only from speech processing. The current model yielded 75% accuracy in its predictive ability, warranting further attention to the applicability of speech data in developing and improving various domains of human-computer interactions.
机译:随着日常生活中越来越多的AI应用,已经讨论了如何提高AI或机器人设备的可用性。这对于社会辅助机器人(SAR)尤其如此。本文的本文研究是试图识别不同人格组中的声音和词汇特征,特别是迈尔斯 - Briggs型指示符(MBTI)的单一人格维度等声音和词汇特征。并设计一种反映语音特征与人格特征之间的相关性的人工神经网络。目前的研究主要报告了MBTI中鉴定的各种语音特性(机械和词汇)和人格尺寸之间的关系。基于重要的发现,设计了一个ANN(人工神经网络),其努力预测仅来自语音处理的人格性状。目前的模型在预测能力中产生了75%的准确性,需要进一步关注语音数据在开发和改进人机相互作用的各个领域的适用性。

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