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BFI-based speaker personality perception using acoustic-prosodic features

机译:基于BFI的说话人人格感知特性

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This paper presents an approach to automatic prediction of the traits the listeners attribute to a speaker they never heard before. In previous research, the Big Five Inventory (BFI), one of the most widely used questionnaires, is adopted for personality assessment. Based on the BFI, in this study, an artificial neural network (ANN) is adopted to project the input speech segment to the BFI space based on acoustic-prosodic features. Personality trait is then predicted by estimating the BFI scores obtained from the ANN. For performance evaluation, the BFI with two versions (one is a complete questionnaire and the other is a simplified version) were adopted. The experiments were performed over a corpus of 535 speech samples assessed in terms of personality traits by experienced subjects. The results show that the proposed method for predicting the trait is efficient and effective and the prediction accuracy rate can achieve 70%.
机译:本文提出了一种自动预测听者归因于他们从未听过的说话者的特征的方法。在先前的研究中,使用最广泛的调查表之一的大五库存(BFI)进行人格评估。本研究基于BFI,采用人工神经网络(ANN)基于声韵特征将输入语音片段投影到BFI空间。然后通过估计从人工神经网络获得的BFI分数来预测人格特质。为了进行绩效评估,采用了两个版本的BFI(一个是完整的调查表,另一个是简化的版本)。实验是在535个语音样本的语料库上进行的,这些样本由经验丰富的受试者根据人格特质进行了评估。结果表明,所提出的性状预测方法有效,有效,预测准确率可以达到70%。

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