轮廓平滑度和电尺寸对金属物体轮廓重建的影响

M. García-Fernández, Ce Garcia Gonzalez, Yuri Álvarez López, F. Andrés
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引用次数: 3

摘要

本文的主要目的是分析在二维情况下,平滑度和电尺寸对金属物体轮廓重建的影响。采用一种基于进化算法和内点算法的多阶段混合方法进行轮廓重建。这种方法的目的是减少所需的信息量,并提高收敛能力,特别是当对象具有较大的电尺寸时。将反问题转化为一个非线性优化问题,使观测域上的实测散射场与估计散射场之间的差最小化。对不同形状和大小的散射体进行了重建,验证了该方法的准确性。此外,还研究了两种不同的EA:遗传算法(GA)和粒子群算法(PSO)。数值结果表明,在低信噪比条件下,该方法仍能获得较高的重构精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Influence of contour smoothness and electric size on the profile reconstruction of metallic objects using hybrid optimization
The main purpose of this article is to analyse the influence of the smoothness and electric size on the reconstruction of a metallic object contour in a 2D case. A multistage hybrid method based on Evolutionary Algorithms (EA) and an Interior-Point algorithm is used for the profile reconstruction. The purpose of this approach is to reduce the required amount of information as well as improving the convergence capabilities, specially when the object has a large electric size. The inverse problem is recast as a nonlinear optimization problem minimizing the difference between the measured and the estimated scattered field on an observation domain. The reconstruction of scatterers with different shapes and sizes is carried out to verify the accuracy of the method. In addition, two different EA are examined: Genetic Algorithm (GA) and Particle Swarm Optimization (PSO). Numerical results show that a high reconstruction accuracy can be achieved, even when the Signal to Noise Ratio (SNR) is low.
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