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Authenticity examination of compressed audio recordings using detection of multiple compression and encoders' identification

机译:使用多重压缩检测和编码器识别对压缩音频录音进行真实性检查

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摘要

Since the appearance of digital audio recordings, audio authentication has been becoming increasingly difficult. The currently available technologies and free editing software allow a forger to cut or paste any single word without audible artifacts. Nowadays, the only method referring to digital audio files commonly approved by forensic experts is the ENF criterion. It consists in fluctuation analysis of the mains frequency induced in electronic circuits of recording devices. Therefore, its effectiveness is strictly dependent on the presence of mains signal in the recording, which is a rare occurrence. Recently, much attention has been paid to authenticity analysis of compressed multimedia files and several solutions were proposed for detection of double compression in both digital video and digital audio. This paper addresses the problem of tampering detection in compressed audio files and discusses new methods that can be used for authenticity analysis of digital recordings. Presented approaches consist in evaluation of statistical features extracted from the MDCT coefficients as well as other parameters that may be obtained from compressed audio files. Calculated feature vectors are used for training selected machine learning algorithms. The detection of multiple compression covers up tampering activities as well as identification of traces of montage in digital audio recordings. To enhance the methods' robustness an encoder identification algorithm was developed and applied based on analysis of inherent parameters of compression. The effectiveness of tampering detection algorithms is tested on a predefined large music database consisting of nearly one million of compressed audio files. The influence of compression algorithms' parameters on the classification performance is discussed, based on the results of the current study.
机译:自从数字音频记录出现以来,音频认证就变得越来越困难。当前可用的技术和免费编辑软件允许伪造者剪切或粘贴任何单个单词而没有可听见的伪影。如今,引用法医专家普遍认可的数字音频文件的唯一方法是ENF标准。它包括对记录设备电子电路中感应的电源频率的波动分析。因此,其有效性严格取决于记录中电源信号的存在,这种情况很少发生。近来,已经非常关注压缩多媒体文件的真实性分析,并且提出了几种用于检测数字视频和数字音频中的双重压缩的解决方案。本文解决了压缩音频文件中的篡改检测问题,并讨论了可用于数字录音真实性分析的新方法。提出的方法包括评估从MDCT系数中提取的统计特征以及可以从压缩音频文件中获得的其他参数。计算出的特征向量用于训练选定的机器学习算法。多重压缩的检测涵盖了篡改活动以及数字录音中蒙太奇痕迹的识别。为了提高方法的鲁棒性,在分析压缩固有参数的基础上,开发并应用了编码器识别算法。篡改检测算法的有效性在预定义的大型音乐数据库上进行了测试,该数据库由将近一百万个压缩音频文件组成。基于当前研究的结果,讨论了压缩算法参数对分类性能的影响。

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