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Modeling and analysis of Electric Network Frequency signal for timestamp verification

机译:用于时间戳验证的电网频率信号的建模和分析

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Electric Network Frequency (ENF) fluctuations based forensic analysis is recently proposed for time-of-recording estimation, timestamp verification, and clip insertion/deletion forgery detection in multimedia recordings. Due to the load control mechanism of the electric grid, ENF fluctuations exhibit pseudo-periodic behavior and generally require a long duration of recording for forensic analysis. In this paper, a statistical study of the ENF signal is conducted to model it using an autoregressive process. The proposed model is used to understand the effect of the ENF signal duration and signal-to-noise ratio on the detection performance of a timestamp verification system under a hypothesis detection framework. Based on the proposed model, a decorrelation based approach is studied to match the ENF signals for timestamp verification. The proposed approach requires a shorter duration of the ENF signal to achieve the same detection performance as without decorrelation. Experiments are conducted on audio data to demonstrate an improvement in the detection performance of the proposed approach.
机译:最近提出了基于电网频率(ENF)波动的取证分析,以用于记录时间估计,时间戳验证以及多媒体记录中的剪辑插入/删除伪造检测。由于电网的负载控制机制,ENF波动表现出伪周期行为,通常需要长时间记录才能进行法医分析。在本文中,对ENF信号进行了统计研究,以使用自回归过程对其进行建模。提出的模型用于理解假设检测框架下ENF信号持续时间和信噪比对时间戳验证系统检测性能的影响。基于提出的模型,研究了一种基于去相关的方法来匹配ENF信号以进行时间戳验证。所提出的方法需要更短的ENF信号持续时间,以实现与不使用去相关相同的检测性能。对音频数据进行了实验,以证明所提出方法的检测性能有所提高。

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