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Dynamic reconstruction algorithm for electrical capacitance tomography based on the proper orthogonal decomposition

机译:基于适当正交分解的电容层析成像动态重建算法

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摘要

Due to the vivid visualizations obtained of the spatial material distributions of inaccessible objects, electrical capacitance tomography (ECT) is considered to be a promising method for the monitoring and control of various industrial processes in which image reconstruction algorithms play important roles in practical applications. In this study, the proper orthogonal decomposition (POD) method is used to derive a low-dimensional model for ECT imaging problems. We propose a POD-based dimensionality reduction dynamic imaging model, which incorporates the time-varying properties of dynamic imaging objects and prior knowledge obtained from previous measurements, other sensors, or numerical simulation results to simultaneously improve the accuracy and speed of image reconstruction. In the framework of this POD-based low-dimensional imaging model, we propose a new objective functional that integrates additional prior information related to imaging objects to convert the ECT image reconstruction task into an optimization problem. The split Bregman iteration (SB1) method is employed to search for the optimal solution to the proposed objective functional. Unlike standard pixel-based imaging methods, the proposed low-dimensional imaging model is obtained by projecting the original unknown variables onto subspaces spanned by a set of orthogonal basis vectors, where the unknown images are reconstructed indirectly by estimating a low-dimensional coefficient vector. Our theoretical study and numerical simulation results validate the superior performance of the proposed imaging method in alleviating the ill-posedness of the ECT image reconstruction problem, as well as increasing the imaging quality, decreasing the computational cost, improving the reconstruction speed, and enhancing robustness.
机译:由于无法访问的对象的空间材料分布获得了生动的可视化效果,因此,电容层析成像(ECT)被认为是一种用于监视和控制各种工业过程的有前途的方法,其中图像重建算法在实际应用中起着重要的作用。在这项研究中,适当的正交分解(POD)方法用于导出ECT成像问题的低维模型。我们提出了一种基于POD的降维动态成像模型,该模型融合了动态成像对象的时变特性以及从先前的测量值,其他传感器或数值模拟结果获得的先验知识,从而同时提高了图像重建的准确性和速度。在此基于POD的低维成像模型的框架中,我们提出了一个新的目标功能,该功能集成了与成像对象有关的其他先验信息,以将ECT图像重建任务转换为优化问题。采用分裂Bregman迭代(SB1)方法来搜索所提出目标函数的最优解。与基于标准像素的成像方法不同,所提出的低维成像模型是通过将原始未知变量投影到由一组正交基向量跨越的子空间中而获得的,在该子空间中,通过估计低维系数向量来间接重建未知图像。我们的理论研究和数值模拟结果验证了所提出的成像方法在减轻ECT图像重建问题的不适性,提高成像质量,降低计算成本,提高重建速度和增强鲁棒性方面的优越性能。 。

著录项

  • 来源
    《Applied Mathematical Modelling》 |2015年第22期|6925-6940|共16页
  • 作者

    J. Lei; J.H. Qiu; S. Liu;

  • 作者单位

    Key Laboratory of Condition Monitoring and Control for Power Plant Equipment, Ministry of Education, North China Electric Power University, Changping District, Beijing 102206, China;

    School of Electrical and Information Engineering, Shanghai Jiao Tong University, Minhang District, Shanghai 200240, China;

    Key Laboratory of Condition Monitoring and Control for Power Plant Equipment, Ministry of Education, North China Electric Power University, Changping District, Beijing 102206, China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Dynamic imaging method; Electrical capacitance tomography; Inverse problem; Low-dimensional model; Proper orthogonal decomposition;

    机译:动态成像方法;电容层析成像;反问题;低维模型;适当的正交分解;
  • 入库时间 2022-08-18 02:59:36

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