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A review of image reconstruction methods in electrical capacitance tomography

机译:电容层析成像中的图像重建方法综述

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In this paper, we review image reconstruction methods and their suitability in electrical capacitance tomography measurement system. These methods can be grouped into direct and iterative methods. Direct methods include Linear back projection, Singular value decomposition, and Tikhonov regularization. Iterative methods are further divided into algebraic and optimization methods. Algebraic reconstruction methods include iterative linear back projection, iterative Tikhonov, Landweber iteration, simultaneously algebraic reconstruction, and model$ - $based reconstruction. Optimization methods include fuzzy mathematical modeling, genetic algorithms, artificial neural networks, generalized vector sampled pattern matching, total variation regularization, regularized total least squares, extended Tikhonov regularization, simulated annealing, compressed sensing principle, population entropy, adaptive differential evolution, least$ - $squares support vector machine, and self-adaptive particle swarm optimization. Some of these methods have been examined through experiments and their comparative analysis have been given. Results show that iterative methods generate high quality images compared with non-iterative ones when evaluated over full component fraction range. However, iterative methods are computationally expensive, and hence used for research and off-line investigations rather than for on-line process monitoring.
机译:在本文中,我们回顾了图像重建方法及其在电容层析成像测量系统中的适用性。这些方法可以分为直接方法和迭代方法。直接方法包括线性反投影,奇异值分解和Tikhonov正则化。迭代方法又分为代数方法和优化方法。代数重建方法包括迭代线性反投影,迭代Tikhonov,Landweber迭代,同时代数重建和基于模型的重建。优化方法包括模糊数学建模,遗传算法,人工神经网络,广义矢量采样模式匹配,总变化正则化,正则化总最小二乘法,扩展的Tikhonov正则化,模拟退火,压缩感测原理,种群熵,自适应微分演化,至少$ squares支持向量机和自适应粒子群优化。这些方法中的一些已通过实验进行了检验,并进行了比较分析。结果表明,在整个组分分数范围内进行评估时,与非迭代方法相比,迭代方法可生成高质量的图像。但是,迭代方法的计算量很大,因此用于研究和脱机调查,而不是用于在线过程监控。

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