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Automatic Assessment of Personality Traits Using Non-verbal Cues in a Saudi Sample

机译:在沙特语样本中使用非口头线索自动评估人格性状

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Different factors shape individuals' personality, where their interaction with others in certain situations could reveal their personal characteristics. Studies have explored the influence of culture in forming personalties, where differences in behaviours are observed. The advancement in communication technologies has opened the world and increased the cultural diversity. Therefore, understanding individual personalities is crucial for the enhancing the effectiveness in communication and for the development of an interconnected world. Such an understanding not only would guarantee smooth group interaction in workplace, education, and social environments, but also would allow for better resource utilization and role allocation for group members. Moreover, with the emergence of HCI technologies and affective computing, automation of personality assessment using non-verbal cues seems feasible. Acknowledging the differences in personality traits between cultures, several studies have analysed such traits clusters in different countries. However, given the unique culture of Arabs in general and Saudi Arabian in particular, personality traits distribution is yet to be investigated. This research investigates two aspects: (1) the distribution of personality types of individuals living in Saudi Arabia compared to other countries, and (2) the feasibility of automatically classifying personality types by analysing non-verbal cues during an interaction setting. To accomplish the first part of the this work, we used the big-five personality assessment survey, where a total of 232 individuals have responded. The results showed a slight difference in the personality assessment of individuals living in Saudi Arabia compare to other cultures. For the second part, we conduced physical interviews with eight subjects where their body actions are recorded. Several non-verbal features were extracted from the body movement (e.g. touching face) and used for automatic classification. The results are generally reasonable, where the accuracy on average was 67% using Support Vector Machines. The slight differences in the personality types from this study results compared suggest the uniqueness of Arab culture in general and Saudi culture in particular. Moreover, the automatic assessment of personality types using body language demonstrate a potential success. Linking the two aspects of personality distribution and automatic assessment of personality, could increase the reliability and accuracy of the results.
机译:不同的因素塑造了个人的个性,在某些情况下与他人的互动可以揭示他们的个人特征。研究探讨了培养对形人的影响,其中观察到行为的差异。通信技术的进步开辟了世界,增加了文化多样性。因此,了解个人个性性对提高沟通的有效性和发展互联世界至关重要。这种理解不仅可以保证在工作场所,教育和社会环境中的顺利组互动,而且还允许为集团成员提供更好的资源利用和角色分配。此外,随着HCI技术的出现和情感计算,使用非口头线索的人格评估自动化似乎是可行的。承认文化之间的人格特征的差异,几项研究分析了不同国家的这种特征群集。但是,鉴于一般和沙特阿拉伯的阿拉伯人的独特文化,特别是人格特质分布尚未调查。本研究调查了两个方面:(1)与其他国家相比,在沙特阿拉伯生活在沙特阿拉伯的人格类型的分布,(2)通过在互动环境中分析非口头线索自动分类人格类型的可行性。为了完成这项工作的第一部分,我们使用了大五个人格评估调查,其中共有232人回应。结果表明,与其他文化相比,在沙特阿拉伯生活中的个人的人格评估略有差异。对于第二部分,我们与八个受试者进行了历史记录的八个科目的身体访谈。从车身运动(例如触摸面)中提取了几种非言语特征,并用于自动分类。结果通常是合理的,其中,平均精度为67%,使用支持载体机。本研究结果中的人格类型的轻微差异比较了尤其是阿拉伯文化的唯一性和沙特文化。此外,使用肢体语言的人格类型的自动评估表现出潜在的成功。将人格分布的两个方面与人格分发和自动评估的关系,可以提高结果的可靠性和准确性。

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