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ECT Image Reconstruction Based on Alternating Direction Approximate Newton Algorithm

机译:基于交替方向近似牛顿算法的ECT图像重建

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As a simple linearization of a highly nonlinear problem of image reconstruction in Electrical Capacitance Tomography (ECT), this approach suffers from drawbacks such as mismatches of position and size of the objects being imaged. To solve the ill-posed and nonlinear inverse problem of ECT image reconstruction, an alternating direction approximate Newton (ADAN) method is developed. The algorithm is based on the alternating direction method of multipliers (ADMM) and an approximation to Newton's method in which a term in Newton's Hessian is replaced by a Barzilai-Borwein (BB) approximation. The numerical experiments show that ADAN has the advantages of fast convergence speed and high imaging accuracy. Compared with the Landweber method, Newton's method and conjugate gradient algorithm, ADAN algorithm is a more stable process, image reconstruction quality is improved significantly. Especially for the cross model and sunrise model, compared with Newton iterative algorithm, image relative error reduced by 0.585 and 0.369, image correlation coefficient increased by 0.498 and 0.431.
机译:作为电容断层扫描(ECT)中的图像重建的高度非线性问题的简单线性化,这种方法遭受缺点,例如被成像的物体的位置和尺寸不匹配。为了解决ECT图像重建的不良和非线性逆问题,开发了交替方向近似牛顿(ADAN)方法。该算法基于乘法器(ADMM)的交替方向方法,以及达到牛顿的方法的近似,其中牛顿黑森州的术语由Barzilai-Borwein(BB)近似代替。数值实验表明,ADAN具有快速收敛速度和高成像精度的优点。与Landweber方法,牛顿的方法和共轭梯度算法相比,ADAN算法是一个更稳定的过程,图像重建质量显着提高。特别是对于跨模型和日出模型,与牛顿迭代算法相比,图像相对误差减少0.585和0.369,图像相关系数增加0.498和0.431。

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