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Adaptive thresholding for robust iterative image reconstruction from limited views projection data

机译:自适应阈值可从有限视图投影数据中进行鲁棒的迭代图像重建

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X-ray computed tomography (CT) is generally obtained through a reconstruction of object attenuation function from its projection data acquired through many angle views. However, in some cases the number of projection views is limited to only a small number that is theoretically not enough for stable reconstruction. The theory of compressed sensing (CS) introduce a new framework for solving this problem. In this paper, we present a simple iterative thresholding image reconstruction algorithm that include a minimization of cost function that include Log-likelihood and `1 norm distance to a reference image. The resulting thresholding function in the reconstruction algorithm is approximated with adaptive function that can preserve low-contrast regions from incorrect thresholding. Moreover, we present a simple approach to handle registration error between the reconstructed image and the reference. This approach is based on using dynamic reference image that generated from previous estimation of the reference image and the current image estimate. The proposed method proved to be robust in image reconstruction from small number of projection views through a simulation study.
机译:X射线计算机断层摄影(CT)通常是通过从许多角度视图获取的投影数据重建对象衰减函数获得的。但是,在某些情况下,投影视图的数量仅限于理论上不足以进行稳定重建的一小部分。压缩感测(CS)理论引入了解决此问题的新框架。在本文中,我们提出了一种简单的迭代阈值图像重建算法,该算法包括成本函数的最小化,其中包括对数似然和到参考图像的'1范数距离。重建算法中产生的阈值函数可以通过自适应函数进行近似,该函数可以保护低对比度区域免受错误阈值的影响。此外,我们提出了一种简单的方法来处理重建图像和参考之间的配准误差。该方法基于使用从参考图像的先前估计和当前图像估计生成的动态参考图像。通过仿真研究证明,该方法在从少量投影视图中重建图像时具有鲁棒性。

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