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A Novel Integrity Authentication Algorithm Based on Perceptual Speech Hash and Learned Dictionaries

机译:一种基于感知语音哈希和学习词典的新型完整性认证算法

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Perceptual speech hash and robust watermarking have been widely investigated to solve the problems of authenticating speech integrity. The former generates a watermark and the latter embeds the watermark into the speech signal to implement speech integrity authentication. In this paper, we propose a perceptual speech hash algorithm and a robust watermarking algorithm for speech integrity authentication. To obtain perceptual speech hash values, we propose a gammatone filter model of the speech signal to extract sensitive auditory features (denoted by gammatone features). A random Gaussian matrix is used to reduce the dimensionality of the features of the gammatone to generate perceptual speech hash values. For the watermarking algorithm, we construct learned dictionaries to obtain the robust sparse feature of coefficients of the stationary wavelet transforms, and embed a watermark (perceptual speech hash values) into the sparse feature by patchwork and quantization index modulation. We illustrate the good imperceptibility of the authentication scheme in terms of the signal-to-noise ratio, objective difference grade, and subjective difference grade, and verify its robustness against common signal processing operations while maintaining imperceptibility. Moreover, our proposed method is sensitive to the malicious modification of the watermarked speech. Compared with state-of-the-art algorithms, the proposed algorithm can obtain better comprehensive performance in the detection and localization of tampering with the content of speech.
机译:知情言论哈希和强大的水印已被广泛调查解决讲话完整性的问题。前者产生水印,后者将水印嵌入语音信号以实现语音完整性认证。在本文中,我们提出了一种感知语音散列算法和一种用于语音完整性认证的鲁棒水印算法。为了获得感知语音哈希值,我们提出了一种语音信号的γ滤波器模型,以提取敏感的听觉特征(由伽马托酮特征表示)。随机高斯矩阵用于降低γγ的特征的维度以产生感知语音哈希值。对于水印算法,我们构建学习词典以获得静止小波变换系数的稳健稀疏特征,并通过拼凑而使水印(感知语音哈希值)嵌入拼凑和量化索引调制中的稀疏特征。我们以信噪比比,客观差异等级和主观差异等级来说明认证方案的良好难以察觉力,并验证其对共同信号​​处理操作的鲁棒性,同时保持不可忽视。此外,我们提出的方法对水印语音的恶意修改敏感。与最先进的算法相比,所提出的算法可以在篡改语音内容的检测和定位中获得更好的全面性能。

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