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ReLiDSS: Novel lie detection system from speech signal

机译:ReLiDSS:新型的语音信号测谎系统

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Lying is among the most common wrong human acts that merits spending time thinking about it. The lie detection is until now posing a problem in recent research which aims to develop a non-contact application in order to estimate physiological changes. In this paper, we have proposed a preliminary investigation on which relevant acoustic parameter can be useful to classify lie or truth from speech signal. Our proposed system in is based on the Mel Frequency Cepstral Coefficient (MFCC) commonly used in automatic speech processing on our own constructed database ReLiDDB (ReGIM-Lab Lie Detection DataBase) for both cases lie detection and person voice recognition. We have performed on this database the Support Vector Machines (SVM) classifier using Linear kernel and we have obtained an accuracy of Lie and Truth detection of speech audio respectively 88.23% and 84.52%.
机译:说谎是最常见的错误人类行为之一,值得花时间思考。迄今为止,谎言检测一直是最近研究中的一个问题,该研究旨在开发非接触式应用程序以估计生理变化。在本文中,我们提出了一个初步的研究,即有关的声学参数可用于对语音信号中的谎言或真相进行分类。我们提出的系统基于通常用于自动语音处理的梅尔频率倒谱系数(MFCC)在我们自己构建的数据库ReLiDDB(ReGIM-Lab Lie Detection DataBase)上进行情况测谎和人声识别。我们已经使用线性核在该数据库上执行了支持向量机(SVM)分类器,并且获得了语音音频的谎言和真相检测的准确性,分别为88.23 \%和84.52 \%。

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