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Second-generation wavelet denoising methods for irregularly spaced data in two dimensions

机译:二维不规则空间数据的第二代小波去噪方法

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This paper discusses bivariate scattered data denoising. The proposed method uses second-generation wavelets constructed with the lifting scheme. Starting from a simple initial transform, we propose predictor operators based on a stabilized bivariate generalization of the Lagrange interpolating polynomial. These predictors are meant to provide a smooth reconstruction. Next, we include an update step which helps to reduce the correlation amongst the detail coefficients, and hence stabilizes the final estimator. We use a Bayesian thresholding algorithm to denoise the empirical coefficients, and we show the performance of the resulting estimator through a simulation study. (C) 2005 Elsevier B.V. All rights reserved.
机译:本文讨论了双变量分散数据去噪。所提出的方法使用了具有提升方案的第二代小波。从简单的初始变换开始,我们基于Lagrange插值多项式的稳定双变量泛化提出了预测算子。这些预测变量旨在提供平滑的重构。接下来,我们包括一个更新步骤,该步骤有助于减少细节系数之间的相关性,从而稳定最终的估算器。我们使用贝叶斯阈值算法对经验系数进行降噪,并通过仿真研究显示所得估计器的性能。 (C)2005 Elsevier B.V.保留所有权利。

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