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A Novel Image Reconstruction Algorithm for Electrical Capacitance Tomography

机译:电容层析成像的一种新的图像重建算法

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An algorithm to reconstruct images with Least Squares Support Vector Machines (LS-SVM) and Simulated Annealing Particle Swarm Optimization (APSO) is provided, which is named as SAP. In order to overcome the soft field characteristics of ECT sensitivity field, we exercised some image samples of typical flow pattern with LS-SVM so as to predict the capacitance error caused by the soft field characteristics and then construct the fitness function of the particle swarm optimization on basis of the capacitance error. This algorithm introduces simulated annealing ideas into PSO, adopts cooling process functions to replace the inertia weight function and construct the time variant inertia weight function featured in annealing mechanism, takes use of the APSO algorithm to search for the optimized resolution of Electrical Capacitance Tomography (ECT) reconstruction image. The simulation results show that SAP algorithm is featured in quick convergence rate and higher imaging precision. Compared with Land Weber algorithm and Newton-Raphson algorithm, the quality of reconstruction image with SAP is significantly improved.
机译:提供了一种使用最小二乘支持向量机(LS-SVM)和模拟退火粒子群优化(APSO)重建图像的算法,该算法称为SAP。为了克服ECT灵敏度场的软场特性,我们使用LS-SVM对典型流型的图像样本进行了模拟,以预测由软场特性引起的电容误差,然后构造粒子群优化的适应度函数。根据电容误差。该算法将模拟退火思想引入到PSO中,采用冷却过程函数代替惯性权重函数,构造退火机制中具有的时变惯性权重函数,利用APSO算法寻找电容层析成像(ECT)的最佳分辨率)重建图像。仿真结果表明,SAP算法具有收敛速度快,成像精度高的特点。与Land Weber算法和Newton-Raphson算法相比,SAP重建图像的质量明显提高。

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