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Hyperanalytic Denoising

机译:超解析去噪

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摘要

A new threshold rule for the estimation of a deterministic image immersed in noise is proposed. The full estimation procedure is based on a separable wavelet decomposition of the observed image, and the estimation is improved by introducing the new threshold to estimate the decomposition coefficients. The observed wavelet coefficients are thresholded, using the magnitudes of wavelet transforms of a small number of "replicates" of the image. The "replicates" are calculated by extending the image into a vector-valued hyperanalytic signal. More than one hyperanalytic signal may be chosen, and either the hypercomplex or Riesz transforms are used, to calculate this object. The deterministic and stochastic properties of the observed wavelet coefficients of the hyperanalytic signal, at a fixed scale and position index, are determined. A "universal" threshold is calculated for the proposed procedure. An expression for the risk of an individual coefficient is derived. The risk is calculated explicitly when the "universal" threshold is used and is shown to be less than the risk of "universal" hard thresholding, under certain conditions. The proposed method is implemented and the derived theoretical risk reductions substantiated
机译:提出了一种新的阈值规则,用于估计沉浸在噪声中的确定性图像。完整的估计程序基于观察图像的可分离小波分解,并且通过引入新的阈值来估计分解系数来改进估计。使用少量图像“复制”的小波变换的幅度,对观察到的小波系数进行阈值处理。通过将图像扩展为矢量值的超分析信号来计算“重复”。可以选择一个以上的超分析信号,并使用超复杂或Riesz变换来计算该对象。确定在固定比例和位置索引下,超分析信号的观测小波系数的确定性和随机性。针对所提出的程序计算“通用”阈值。得出了一个系数风险的表达式。当使用“通用”阈值时,明确计算了该风险,并且在某些条件下,该风险显示为小于“通用”硬阈值的风险。实施了所提出的方法,并证实了理论上的风险减少

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