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首页> 外文期刊>AEU: Archiv fur Elektronik und Ubertragungstechnik: Electronic and Communication >A pattern recognition framework to blind audio watermark decoding
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A pattern recognition framework to blind audio watermark decoding

机译:用于盲音频水印解码的模式识别框架

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摘要

Conventional blind audio watermark (WM) decoders use matched-filtering techniques because of their simplicity. In these methods, WM decoding and WM detection are often considered as separate problems and the WM signal embedded by spreading a secret key through the spectrum of a host signal is extracted by maximizing correlation between the secret key and the received audio. Conventionally decoding is achieved by using a pre-defined decoding/detection threshold and tradeoff between the false rejection ratio and false acceptance ratio constitutes main drawback of the conventional decoders. Unlike the conventional methods, this paper introduces a pattern recognition (PR) framework to WM extraction and integrates WM decoding and detection problems into a unique classification problem that eliminates thresholding. The proposed method models statistics of watermarked and original audio signals by a Gaussian mixture model (GMM) with K components. Learning of the embedded WM data is achieved in a principal component analysis (PCA) transformed wavelet space and a maximum likelihood (ML) classifier is designed for WM decoding. Robustness of the proposed method is evaluated under compression, additive noise and Stirmark benchmark attacks. It is shown that both WM decoding and detection performances of the introduced decoder outperform the conventional decoders. (C) 2007 Elsevier GmbH. All rights reserved.
机译:常规的盲音频水印(WM)解码器由于其简单性而使用了匹配滤波技术。在这些方法中,WM解码和WM检测通常被认为是单独的问题,并且通过最大化密钥与接收到的音频之间的相关性来提取通过在主机信号的频谱中扩展密钥而嵌入的WM信号。常规地,解码是通过使用预定的解码/检测阈值来实现的,并且错误拒绝率和错误接受率之间的折衷构成了常规解码器的主要缺点。与常规方法不同,本文在WM提取中引入了模式识别(PR)框架,并将WM解码和检测问题集成到消除阈值的独特分类问题中。所提出的方法通过具有K分量的高斯混合模型(GMM)对水印和原始音频信号的统计进行建模。在主成分分析(PCA)变换的小波空间中实现了嵌入式WM数据的学习,并且为WM解码设计了最大似然(ML)分类器。在压缩,加性噪声和Stirmark基准攻击下评估了该方法的鲁棒性。结果表明,引入解码器的WM解码性能和检测性能均优于传统解码器。 (C)2007 Elsevier GmbH。版权所有。

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