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Nonlocal Total Variation Using the First and Second Order Derivatives and Its Application to CT image Reconstruction

机译:使用一阶和二阶导数的非局部总变化及其在CT图像重建中的应用

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摘要

We propose a new class of nonlocal Total Variation (TV), in which the first derivative and the second derivative are mixed. Since most existing TV considers only the first-order derivative, it suffers from problems such as staircase artifacts and loss in smooth intensity changes for textures and low-contrast objects, which is a major limitation in improving image quality. The proposed nonlocal TV combines the first and second order derivatives to preserve smooth intensity changes well. Furthermore, to accelerate the iterative algorithm to minimize the cost function using the proposed nonlocal TV, we propose a proximal splitting based on Passty’s framework. We demonstrate that the proposed nonlocal TV method achieves adequate image quality both in sparse-view CT and low-dose CT, through simulation studies using a brain CT image with a very narrow contrast range for which it is rather difficult to preserve smooth intensity changes.
机译:我们提出了一类新的非局部总变异(TV),其中一阶导数和二阶导数混合在一起。由于大多数现有电视仅考虑一阶导数,因此会遇到诸如阶梯状伪影以及纹理和低对比度对象的平滑强度变化损失等问题,这是提高图像质量的主要限制。拟议的非本地电视结合了一阶和二阶导数,以很好地保持平滑的强度变化。此外,为了加快迭代算法的速度,使使用拟议的非本地电视的成本函数最小化,我们提出了一种基于Passty框架的近端分割方法。我们证明了拟议的非本地电视方法在稀疏视图CT和低剂量CT中都可以达到足够的图像质量,这是通过使用对比度非常窄的大脑CT图像进行的模拟研究来进行的,很难保持平滑的强度变化。

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