文件名称:poisson_nlmeans
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An extension of the non local (NL) means is proposed for
images damaged by Poisson noise. The proposed method is
guided by the noisy image and a pre-filtered image and is
adapted to the statistics of Poisson noise. The influence of
both images can be tuned using two filtering parameters. We
propose an automatic setting to select these parameters based
on the minimization of the estimated risk (mean square error).
This selection uses an estimator of the MSE for NL means
with Poisson noise and Newton’s method to find the optimal
parameters in few iterations(An extension of the non local (NL) means is proposed for images damaged by Poisson noise.)
images damaged by Poisson noise. The proposed method is
guided by the noisy image and a pre-filtered image and is
adapted to the statistics of Poisson noise. The influence of
both images can be tuned using two filtering parameters. We
propose an automatic setting to select these parameters based
on the minimization of the estimated risk (mean square error).
This selection uses an estimator of the MSE for NL means
with Poisson noise and Newton’s method to find the optimal
parameters in few iterations(An extension of the non local (NL) means is proposed for images damaged by Poisson noise.)
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下载文件列表
poisson_nlmeans
poisson_nlmeans\poisson_nlmeans_kernel.mexglx
poisson_nlmeans\diskconvolution.m
poisson_nlmeans\README
poisson_nlmeans\poisson_nlmeans_kernel.mexw32
poisson_nlmeans\plotimage.m
poisson_nlmeans\peppers.tif
poisson_nlmeans\mean2.m
poisson_nlmeans\poisson_nlmeans_kernel.mexa64
poisson_nlmeans\poisson_nlmeans_example.m
poisson_nlmeans\psnr.m
poisson_nlmeans\poisson_nlmeans.m
poisson_nlmeans\poisson_nlmeans_kernel.mexglx
poisson_nlmeans\diskconvolution.m
poisson_nlmeans\README
poisson_nlmeans\poisson_nlmeans_kernel.mexw32
poisson_nlmeans\plotimage.m
poisson_nlmeans\peppers.tif
poisson_nlmeans\mean2.m
poisson_nlmeans\poisson_nlmeans_kernel.mexa64
poisson_nlmeans\poisson_nlmeans_example.m
poisson_nlmeans\psnr.m
poisson_nlmeans\poisson_nlmeans.m