IEEE Transactions on Image Processing · 2007 · 278 citations · 33 references
DeblurringStatistical Signal ProcessingImage AnalysisEngineeringRandom-valued Impulse NoiseNoiseVideo DenoisingSpeech ProcessingDetection StatisticProbability TheoryImage DenoisingImage RestorationSignal DetectionImage StatisticSignal ProcessingStatisticsNoise Reduction
This paper proposes an image statistic for detecting random-valued impulse noise. By this statistic, we can identify most of the noisy pixels in the corrupted images. Combining it with an edge-preserving regularization, we obtain a powerful two-stage method for denoising random-valued impulse noise, even for noise levels as high as 60%. Simulation results show that our method is significantly better than a number of existing techniques in terms of image restoration and noise detection.
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