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首页> 外文期刊>Journal of Biomedical Science and Engineering >A novel approach for detection of deception using Smoothed Pseudo Wigner-Ville Distribution (SPWVD)
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A novel approach for detection of deception using Smoothed Pseudo Wigner-Ville Distribution (SPWVD)

机译:一种使用平滑伪Wigner-Ville分布(SPWVD)进行欺骗检测的新颖方法

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摘要

For many years, the uncertainty of lie-detection systems has been one of the concerns of defense related agencies. Clearly the results of these systems must be generalized by a high value of accuracy to be acceptable by judicial systems. In this paper, a new method based on P300-based component has been proposed for lie-detection. In this regard, the test protocol is designed based on Odd-ball paradigm concealed information recognition. This test was done on 32 people and their brain signals were acquired. After preprocessing, the classic features are extracted from each single trial. After that, time-frequency (TF) transformation is applied on the sweeps and TF features are produced thereupon. Then, the best combinational feature vector is selected in order to improve classifier accuracy. Finally, Guilty and Innocent persons are classified by KNN and MLP. We found that combination of Time-Frequency and Classic features have better ability to achieve higher amount of accuracy. The obtained results show that the proposed method can detect deception by the accuracy of 89.73% which is better than other previously reported methods.
机译:多年来,测谎系统的不确定性一直是国防相关机构关注的问题之一。显然,这些系统的结果必须以较高的准确性来概括,以使司法系统可以接受。本文提出了一种基于P300的组件测谎方法。在这方面,测试协议是基于奇数球范例隐式信息识别而设计的。该测试在32个人身上进行,并获得了他们的大脑信号。经过预处理后,将从每个试验中提取经典特征。此后,将时频(TF)变换应用于扫描并在其上产生TF特征。然后,选择最佳组合特征向量以提高分类器准确性。最后,有罪人和无辜者由KNN和MLP进行分类。我们发现时频和经典功能的组合具有更好的能力来实现更高的准确性。所得结果表明,所提方法能够以89.73%的准确率检测出欺骗行为,优于以前报道的其他方法。

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