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Identification of Speech Characteristics to Distinguish Human Personality of Introversive and Extroversive Male Groups

机译:识别语音特征以区分内向和外向男性群体的人格

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摘要

According to the similarity-attraction theory, humans respond more positively to people who are similar in personality. This observation also holds true between humans and robots, as shown by recent studies that examined human-robot interactions. Thus, it would be conducive for robots to be able to capture the user personality and adjust the interactional patterns accordingly. The present study is intended to identify significant speech characteristics such as sound and lexical features between the two different personality groups (introverts vs. extroverts), so that a robot can distinguish a user’s personality by observing specific speech characteristics. Twenty-four male participants took the Myers-Briggs Type Indicator (MBTI) test for personality screening. The speech data of those participants (identified as 12 introvertive males and 12 extroversive males through the MBTI test) were recorded while they were verbally responding to the eight Walk-in-the-Wood questions. After that, speech, sound, and lexical features were extracted. Averaged reaction time (1.200 s for introversive and 0.762 s for extroversive; = 0.01) and total reaction time (9.39 s for introversive and 6.10 s for extroversive; = 0.008) showed significant differences between the two groups. However, averaged pitch frequency, sound power, and lexical features did not show significant differences between the two groups. A binary logistic regression developed to classify two different personalities showed 70.8% of classification accuracy. Significant speech features between introversive and extroversive individuals have been identified, and a personality classification model has been developed. The identified features would be applicable for designing or programming a social robot to promote human-robot interaction by matching the robot’s behaviors toward a user’s personality estimated.
机译:根据相似吸引理论,人对性格相似的人的反应更加积极。正如最近研究人机交互的研究所示,这种观察在人机之间也同样适用。因此,有利于机器人能够捕获用户个性并相应地调整交互模式。本研究旨在确定重要的语音特征,例如两个不同个性组(内向与外向)之间的声音和词汇特征,以便机器人可以通过观察特定的语音特征来区分用户的个性。 24名男性参与者参加了Myers-Briggs类型指标(MBTI)测试,以进行人格筛查。记录这些参与者的语音数据(通过MBTI测试确定为12个性格内向的男性和12个性格外向的男性),同时他们对8个“步入式”问题进行口头回答。之后,提取语音,声音和词汇特征。平均反应时间(内向型为1.200 s,外向型为0.762 s; = 0.01)和总反应时间(内向型为9.39 s,外向型为6.10 s; = 0.008)显示两组之间存在显着差异。但是,平均音调频率,声音功率和词汇特征在两组之间没有显示出显着差异。用来对两种不同性格进行分类的二进制逻辑回归显示分类精度为70.8%。内向型和外向型个体之间的重要言语特征已经被识别,并且人格分类模型已经被开发。识别出的功能将适用于设计或编程社交机器人,以通过将机器人的行为与估计的用户个性相匹配来促进人机交互。

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