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Study on speech watermarking based on robust principal component analysis and formant manipulations

机译:基于鲁棒主成分分析和共振峰处理的语音水印研究

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This paper proposes a watermarking method for speech signals based on Robust Principal Component Analysis (ROCHA) and formant manipulations. As the spectrogram of speech has a relatively sparse structure, the core information of speech is extracted into a sparse matrix using RPCA so that formants can be estimated with Linear Prediction (LP) more accurately even under noise/interferences, which significantly improves the robustness of proposed method. We investigate how the formants can be controlled and manipulated to make the watermarking method effective. Watermarks are embedded into speech by controlling the shape and power of formants using the stable and robust parameter, i.e., line spectral frequencies (LSFs), Evaluations regarding inaudibility and robustness are carried out and the results suggest that the proposed method can not only satisfy inaudibility but also provide good robustness against general processing and different speech codecs which is better than the other methods.
机译:本文提出了一种基于鲁棒主成分分析(ROCHA)和共振峰操纵的语音信号水印方法。由于语音的频谱图具有相对稀疏的结构,因此使用RPCA将语音的核心信息提取到稀疏矩阵中,以便即使在噪声/干扰下也可以使用线性预测(LP)来更准确地估计共振峰,这显着提高了语音的鲁棒性建议的方法。我们研究如何控制和操纵共振峰,以使加水印方法有效。通过使用稳定且鲁棒的参数(即线谱频率(LSFs))控制共振峰的形状和功率,将水印嵌入语音中,对听不清和鲁棒性进行了评估,结果表明所提出的方法不仅可以满足听不见度而且还提供了针对一般处理和不同语音编解码器的良好鲁棒性,这比其他方法要好。

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