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A spatially selective filter based on the undecimated wavelet transform that is robust to noise estimation error

机译:基于未抽取小波变换的空间选择性滤波器,对噪声估计误差具有鲁棒性

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Xu, Y. et al. (see IEEE T-IP, vol.3, no.6, 1994) proposed an effective wavelet based spatially selective denoising algorithm. The performance of the algorithm depends on the noise power estimation. Pan, Q. et al. (see IEEE T-SP, vol.47, no.12, 1999) tried to improve the performance via a small modification. However, our simulation shows that both of these methods are sensitive to noise estimation. We analyze the sensitivity of these two methods and introduce a new spatially selective noise filter based on the UDWT (undecimated wavelet transform) that uses spatial correlation thresholding. Theoretic analysis and simulations show our algorithm improves the denoising effect. They also show that our proposed method is robust to errors in the noise power estimate. Because our approach is robust, we can relax the requirements for the estimation of the threshold without sacrificing performance, and so our method is more computationally efficient. We also put some perspective on the impact of employing nonorthogonal representations. Simulation results show the effectiveness of our proposed algorithm.
机译:徐,Y.等。 (参见IEEE T-IP,Vol.3,No.6,1994)提出了一种基于有效的小波的空间选择性去噪算法。算法的性能取决于噪声功率估计。平底锅,Q.等。 (参见IEEE T-SP,Vol.47,No.12,199)试图通过小修改来提高性能。但是,我们的仿真表明这两种方法对噪声估计敏感。我们分析这两种方法的灵敏度,并基于使用空间相关阈值的UDWT(未传定的小波变换)引入新的空间选择性噪声滤波器。理论分析和仿真显示我们的算法改善了去噪效果。他们还表明,我们的提出方法对噪声功率估计中的错误是强大的。因为我们的方法是强大的,我们可以在不牺牲性能的情况下放宽估计阈值的要求,因此我们的方法更加计算效率更高。我们还对雇用非正交表示的影响进行了一些观点。仿真结果表明了我们所提出的算法的有效性。

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