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Efficient and reliable schemes for nonlinear diffusion filtering

机译:非线性扩散滤波的高效可靠方案

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Nonlinear diffusion filtering in image processing is usually performed with explicit schemes. They are only stable for very small time steps, which leads to poor efficiency and limits their practical use. Based on a discrete nonlinear diffusion scale-space framework we present semi-implicit schemes which are stable for all time steps. These novel schemes use an additive operator splitting (AOS), which guarantees equal treatment of all coordinate axes. They can be implemented easily in arbitrary dimensions, have good rotational invariance and reveal a computational complexity and memory requirement which is linear in the number of pixels. Examples demonstrate that, under typical accuracy requirements, AOS schemes are at least ten times more efficient than the widely used explicit schemes.
机译:图像处理中的非线性扩散滤波通常使用显式方案执行。它们仅在很小的时间步中稳定,这导致效率低下并限制了它们的实际使用。基于离散非线性扩散尺度空间框架,我们提出了对所有时间步均稳定的半隐式方案。这些新颖的方案使用加法运算符拆分(AOS),可确保所有坐标轴均得到平等对待。它们可以容易地以任意尺寸实现,具有良好的旋转不变性,并且显示出计算复杂度和存储要求,其像素数量是线性的。实例表明,在典型的精度要求下,AOS方案的效率至少是广泛使用的显式方案的十倍。

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