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Denoising Smooth Signals Using a Bayesian Approach: Application to Altimetry

机译:使用贝叶斯方法对平滑信号进行降噪:在测高仪中的应用

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摘要

This paper presents a novel Bayesian strategy for the estimation of smooth signals corrupted by Gaussian noise. The method assumes a smooth evolution of a succession of continuous signals that can have a numerical or an analytical expression with respect to some parameters. The proposed Bayesian model takes into account the Gaussian properties of the noise and the smooth evolution of the successive signals. In addition, a gamma Markov random field prior is assigned to the signal energies and to the noise variances to account for their known properties. The resulting posterior distribution is maximized using a fast coordinate descent algorithm whose parameters are updated by analytical expressions. The proposed algorithm is tested on satellite altimetric data demonstrating good denoising results on both synthetic and real signals. In comparison with state-of-the-art algorithms, the proposed strategy provides a good compromise between denoising quality and necessary reduced computational cost. The proposed algorithm is also shown to improve the quality of the altimetric parameters when combined with a parameter estimation or a classification strategy.
机译:本文提出了一种新颖的贝叶斯策略,用于估计被高斯噪声破坏的平滑信号。该方法假定连续信号的连续平滑演化,这些信号在某些参数方面可以具有数值或解析表达式。提出的贝叶斯模型考虑了噪声的高斯性质和连续信号的平滑演化。另外,将伽马氏马尔可夫随机场先验分配给信号能量和噪声方差,以说明它们的已知特性。使用快速坐标下降算法将其后验分布最大化,该算法的参数通过解析表达式进行更新。所提出的算法在卫星高程数据上进行了测试,证明了合成信号和真实信号均具有良好的去噪效果。与最新算法相比,所提出的策略在降噪质量和必要的降低的计算成本之间提供了很好的折衷。与参数估计或分类策略结合使用时,所提出的算法还可以提高测高参数的质量。

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