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A Novel System for Recognizing Recording Devices from Recorded Speech Signals

机译:用于识别来自录制的语音信号的记录设备的新系统

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摘要

The field of digital audio forensics aims to detect threats and fraud in audio signals. Contemporary audio forensic techniques use digital signal processing to detect the authenticity of recorded speech, recognize speakers, and recognize recording devices. User-generated audio recordings from mobile phones are very helpful in a number of forensic applications. This article proposed a novel method for recognizing recording devices based on recorded audio signals. First, a database of the features of various recording devices was constructed using 32 recording devices (20 mobile phones of different brands and 12 kinds of recording pens) in various environments. Second, the audio features of each recording device, such as the Mel-frequency cepstral coefficients (MFCC), were extracted from the audio signals and used as model inputs. Finally, support vector machines (SVM) with fractional Gaussian kernel were used to recognize the recording devices from their audio features. Experiments demonstrated that the proposed method had a 93.4% accuracy in recognizing recording devices.
机译:数字音频取证领域旨在检测音频信号中的威胁和欺诈。当代音频取证技术使用数字信号处理来检测记录的语音的真实性,识别扬声器,并识别记录设备。来自移动电话的用户生成的音频录制在许多法医应用中非常有用。本文提出了一种用于识别基于录制的音频信号的记录设备的新方法。首先,在各种环境中使用32个记录设备(20种不同品牌的移动电话和12种记录钢笔)构建各种记录设备的特征数据库。其次,从音频信号提取每个记录设备的音频特征,例如熔融频率谱系数(MFCC)并用作型号输入。最后,使用带有分数高斯内核的支持向量机(SVM)来识别记录设备从其音频功能。实验表明,该方法在识别记录设备方面具有93.4%的精度。

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