Phychoacoustic Masking of Delta and Time -Difference Cepstrum Features for Deception Detection

Sinead V. Fernandes, M. S. Ullah
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引用次数: 5

Abstract

This paper presents the test results of analyzing mel frequency cepstrum coefficient (MFCC), delta and difference cepstrum features to detect and distinguish the truthful and deceptive speech. The features are extracted based on the psychoacoustic masking property of human speech and how it is perceived. Truthful and deceptive speeches are preset based off a guilty male speaker in police custody. Delta cepstrum and time-difference cepstrum features at triangular critical bands filter and a neural network show the distinctions that determine whether an utterance is truthful or deceptive. In this paper, we analyze the extracted MFCC, delta cepstrum and time-difference cepstrum features to see how stress in speech accurately conveys human speech emotion and deception. Finally, we feed the data into an artificial neural network model to test out the results.
用于欺骗检测的δ和时差倒谱特征的声心理掩蔽
本文给出了通过分析频率倒频谱系数(MFCC)、δ和差倒频谱特征来检测和区分真假语音的测试结果。这些特征是基于人类语音的心理声掩蔽特性及其感知方式提取的。真实和欺骗性的演讲都是基于一个被警察拘留的有罪的男性演讲者而预设的。三角临界带上的δ倒谱和时差倒谱特征通过滤波和神经网络显示了判断话语是真实还是欺骗性的区别。在本文中,我们分析提取的MFCC、delta倒谱和时差倒谱特征,以了解语音中的压力如何准确地传达人类的语音情感和欺骗。最后,我们将数据输入人工神经网络模型来检验结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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