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Impulse noise removal using 1-D switching median filter with adaptive scanning order based on structural context of image

机译:使用基于图像结构上下文的具有自适应扫描顺序的一维切换中值滤波器来去除脉冲噪声

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This paper describes the detail-preserving impulse noise removal performance of a one-dimensional (1D) switching median filter (SMF) applied along an adaptive space-filling curve. Usually, a SMF with a two-dimensional (2-D) filter window is widely used for impulse noise removal while still preserving detailed parts in an input image. However, the noise detector of the 2-D filter does not always distinguish between the original pixels and the noise-corrupted ones perfectly. In particular, pixels constituting thin lines in an input image tend to be incorrectly detected as noise-corrupted pixels, and such pixels are filtered regardless of the necessity of the filtering. To cope with this problem, we propose a new impulse noise removal method based on a 1-D SMF and a space-filling curve which is adaptively drawn using a minimum spanning tree reflecting structural context of an input image.
机译:本文介绍了沿自适应空间填充曲线应用的一维(1D)切换中值滤波器(SMF)的保留细节的脉冲噪声去除性能。通常,具有二维(2-D)滤镜窗口的SMF被广泛用于去除脉冲噪声,同时仍保留输入图像中的详细部分。然而,二维滤波器的噪声检测器并不总是能够完美地区分原始像素和受噪声破坏的像素。特别地,在输入图像中构成细线的像素倾向于被错误地检测为噪声损坏的像素,并且这种像素被滤波而与滤波的必要性无关。为了解决这个问题,我们提出了一种基于1-D SMF和空间填充曲线的新型脉冲噪声消除方法,该方法使用反映输入图像结构上下文的最小生成树来自适应绘制。

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