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Dual Polynomial Thresholding For Transform Denoising In Application To Local Pixel Grouping Method

机译:变换去噪的双重多项式阈值在局部像素分组方法中的应用

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Thresholding operators have been used successfully for denoising signals, mostly in the wavelet domain. These operators transform a noisy coefficient into a denoised coefficient with a mapping that depends on signal statistics and the value of the noisy coefficient itself. This paper demonstrates that a polynomial threshold mapping can be used for enhanced denoising of Principal Component Analysis (PCA) transform coefficients. In particular, two polynomial threshold operators are used here to map the coefficients obtained with the popular local pixel grouping method (LPG-PCA), which eventually improves the denoising power of LPG-PCA . The method reduces the computational burden of LPG-PCA, by eliminating the need for a second iteration in most cases. Quality metrics and visual assessment show the improvement.
机译:阈值运算符已成功用于信号去噪,主要是在小波域中。这些运算符通过映射来将噪声系数转换为去噪系数,该映射取决于信号统计信息和噪声系数本身的值。本文证明了多项式阈值映射可用于增强主成分分析(PCA)变换系数的去噪。特别地,这里使用两个多项式阈值运算符来映射通过流行的局部像素分组方法(LPG-PCA)获得的系数,这最终提高了LPG-PCA的去噪能力。通过消除大多数情况下的第二次迭代,该方法减轻了LPG-PCA的计算负担。质量指标和视觉评估显示出了改进。

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