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首页> 外文期刊>International journal of advanced intelligence paradigms >Speech-based automatic personality trait prediction analysis
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Speech-based automatic personality trait prediction analysis

机译:基于语音的自动个性性状预测分析

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摘要

Automatic personality perception is the prediction of personality that others attribute to a person in a given situation. The aim of automatic personality perception is to predict the personality of the speaker perceived by the listener from nonverbal behaviour. Extroversion, conscientiousness, agreeableness, neuroticism, and openness are the speaker traits used for personality assessment. In this work, a speaker trait prediction approach for automatic personality assessment has been proposed. This approach is based on modelling the relationship between speech signal and personality traits. The experiments are performed over the SSPNet speaker personality corpus. For speaker trait prediction, support vector machines (SVM), multilayer perceptron (MLP), and instance-based k-nearest neighbour were analysed with multiple features. Various features have been analysed to find suitable feature for various speaker traits. The analyses have been conducted using pitch, formant, and mel frequency cepstral coefficients (MFCC) and the analysis results are presented. The accuracy of 100% has been obtained for MFCC features with 19 coefficients.
机译:自动个性感知是预测其他人在特定情况下对一个人的个性。自动人格感知的目的是预测听众感知的扬声器的人格来自非语言行为。促进,尽职,令人愉快,神经细胞和开放性是用于人格评估的发言者特征。在这项工作中,已经提出了一种用于自动人格评估的扬声器特质预测方法。这种方法是基于对语音信号和人格特征之间的关系进行建模。实验是通过SSPNet扬声器个性语料库进行的。对于扬声器特征预测,支持向量机(SVM),多层Perceptron(MLP)和基于实例的K-Collest邻居,具有多种特征。已经分析了各种特征以找到各种扬声器特征的合适功能。通过俯仰,甲醛和MEL频率谱系数(MFCC)进行了分析,并提出了分析结果。对于具有19系数的MFCC特征,已经获得了100%的准确性。

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