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Adaptive Order-Statistics Multi-Shell Filtering for Bad Pixel Correction within CFA Demosaicking

机译:Adaptive order-Statistics Mult-shell滤波对于CFA脱魂曲中的错误像素校正

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As today's digital cameras contain millions of image sensors, it is highly probable that the image sensors will contain a few defective pixels due to errors in the fabrication process. While these bad pixels would normally be mapped out in the manufacturing process, more defective pixels, known as hot pixels, could appear over time with camera usage. Since some hot pixels can still function at normal settings, they need not be permanently mapped out because they will only appear on a long exposure and/or at high ISO settings. In this paper, we apply an adaptive order-statistics multi-shell filter within CFA demosaicking to filter out only bad pixels whilst preserving the rest of the image. The CFA image containing bad pixels is first demosaicked to produce a full colour image. The adaptive filter is then only applied to the actual sensor pixels within the colour image for bad pixel correction. Demosaicking is then re-applied at those bad pixel locations to produce the final full colour image free of defective pixels. It has been shown that our proposed method outperforms a separate process of CFA demosaicking followed by bad pixel removal.
机译:由于今天的数码相机容纳数百万图像传感器,因此高度可能是由于制造过程中的错误,图像传感器将包含一些缺陷像素。虽然这些坏像素通常在制造过程中映射出来,但是在相机使用中可以随着时间的推移而被称为热像素的更多缺陷像素。由于一些热像素仍然可以在正常设置上运行,因此它们不需要永久映射出来,因为它们只会显示在长曝光和/或高ISO设置上。在本文中,我们在CFA DemosaIking中应用一个自适应秩序统计多壳滤波器,以仅在保留其余图像时滤除差错像素。含有坏像素的CFA图像首先进行DemosaIked以产生全彩色图像。然后,自适应滤波器仅应用于彩色图像内的实际传感器像素以进行错误的像素校正。然后在那些坏像素位置重新应用去脱模,以产生无缺陷像素的最终的全彩色图像。已经表明我们所提出的方法优于CFA脱囊的单独过程,然后拆除了坏的像素。

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