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Robust audio and speech watermarking using Gaussian and Laplacian modeling

机译:使用高斯和拉普拉斯建模的稳健音频和语音水印

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摘要

In this paper, a semi-blind multiplicative watermarking approach for audio and speech signals has been presented. At the receiver end, the optimal maximum likelihood (ML) detector aided by the archived information for Gaussian and Laplacian signals in noisy environment is designed and implemented. The performance of the proposed scheme is analytically calculated and verified by simulation. Then, we adapt the proposed scheme to speech and audio signals. To improve robustness, the algorithm is applied to low frequency components of the host signal. Besides, the power of the watermark is controlled elegantly to have inaudibility using perceptual evaluation of audio quality (PEAQ) and perceptual evaluation of speech quality (PESQ) algorithms. Experimental results over several audio and speech signals show the higher robustness of the proposed technique in comparison with other watermarking schemes presented so far.
机译:本文提出了一种针对音频和语音信号的半盲乘法水印方法。在接收机端,设计并实现了在嘈杂环境中针对高斯和拉普拉斯信号的存档信息辅助的最佳最大似然(ML)检测器。对该方案的性能进行了分析计算,并通过仿真进行了验证。然后,我们将提出的方案应用于语音和音频信号。为了提高鲁棒性,将该算法应用于主机信号的低频分量。此外,通过对音频质量的感知评估(PEAQ)和对语音质量的感知评估(PESQ)算法,可以优雅地控制水印的功能,使其具有听觉不到的效果。与迄今为止提出的其他水印方案相比,在几种音频和语音信号上的实验结果表明,该技术具有更高的鲁棒性。

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