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NON-LOCAL MEANS IMAGE DENOISING WITH DETAIL PRESERVATION USING SELF-SIMILARITY DRIVEN BLENDING
NON-LOCAL MEANS IMAGE DENOISING WITH DETAIL PRESERVATION USING SELF-SIMILARITY DRIVEN BLENDING
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机译:使用自相似驱动混合实现具有细节保留的非本地均值图像降噪
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摘要
System, apparatus, method, and computer readable media for texture enhanced non-local means (NLM) image denoising. In embodiments, detail is preserved in filtered image data through a blending between the noisy input target pixel value and the NLM pixel value that is driven by self-similarity and further informed by an independent measure of local texture. In embodiments, the blending is driven by one or more blending weight or coefficient that is indicative of texture so that the level of detail preserved by the enhanced noise reduction filter scales with the amount of texture. Embodiments herein may thereby denoise regions of an image that lack significant texture (i.e. are smooth) more aggressively than more highly textured regions. In further embodiments, the blending coefficient is further determined based on similarity scores of candidate patches with the number of those scores considered being based on the texture score.
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