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2-D adaptive CPWQ fast filtering based on weighted least-squares errors

机译:基于加权最小二乘误差的二维自适应CPWQ快速滤波

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In this paper, a two-dimensional (2-D) fast adaptive filtering algorithm based on the exponentially weighted least squares errors is developed for the non linear canonical piecewise quadratic (CPWQ) model. This algorithm take advantages of the non linear CPWQ modeling and the fast convergence of the exponentially weighted least squares adaptive algorithm. The simulation results show that the proposed method gives good results in image restoration. Experimental comparison with the canonical piecewise linear (CPWL) model shows the superiority of the non linear filter in term of image enhancement.
机译:本文针对非线性典型分段二次(CPWQ)模型,开发了一种基于指数加权最小二乘误差的二维(2-D)快速自适应滤波算法。该算法利用非线性CPWQ建模和指数加权最小二乘自适应算法的快速收敛性。仿真结果表明,该方法在图像复原中具有良好的效果。与典范分段线性(CPWL)模型进行的实验比较表明,非线性滤波器在图像增强方面具有优越性。

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