Blind identification of source mobile devices using VoIP calls

Mehdi Jahanirad, A. W. A. Abdul Wahab, N. B. Anuar, Mohd Yamani Idna Idris, M. N. Ayub
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引用次数: 6

Abstract

Sources such as speakers and environments from different communication devices produce signal variations that result in interference generated by different communication devices. Despite these convolutions, signal variations produced by different mobile devices leave intrinsic fingerprints on recorded calls, thus allowing the tracking of the models and brands of engaged mobile devices. This study aims to investigate the use of recorded Voice over Internet Protocol calls in the blind identification of source mobile devices. The proposed scheme employs a combination of entropy and mel-frequency cepstrum coefficients to extract the intrinsic features of mobile devices and analyzes these features with a multi-class support vector machine classifier. The experimental results lead to an accurate identification of 10 source mobile devices with an average accuracy of 99.72%.
盲识别源移动设备使用VoIP呼叫
来自不同通信设备的扬声器和环境等源产生的信号变化导致不同通信设备产生的干扰。尽管存在这些卷积,但不同移动设备产生的信号变化会在通话记录上留下固有的指纹,从而可以跟踪所使用移动设备的型号和品牌。本研究旨在探讨在盲识别源移动设备中使用记录的互联网协议语音呼叫。该方案采用熵和梅尔频率倒谱系数相结合的方法提取移动设备的内在特征,并使用多类支持向量机分类器对这些特征进行分析。实验结果表明,对10种源移动设备进行了准确的识别,平均准确率为99.72%。
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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