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首页> 外文期刊>IEEE Transactions on Antennas and Propagation >An Efficient Method for Complex Antenna Design Based on a Self Adaptive Surrogate Model-Assisted Optimization Technique
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An Efficient Method for Complex Antenna Design Based on a Self Adaptive Surrogate Model-Assisted Optimization Technique

机译:基于自适应替代模型辅助优化技术的复杂天线设计的一种有效方法

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摘要

Surrogate models are widely used in antenna design for optimization efficiency improvement. Currently, the targeted antennas often have a small number of design variables and specifications, and the surrogate model training time is short. However, modern antennas become increasingly complex, which needs much more design variables and specifications, making the training time become a new bottleneck, i.e., in some cases, even longer than electromagnetic (EM) simulation time. Therefore, a new method, called training cost reduced surrogate model-assisted hybrid differential evolution for complex antenna optimization (TR-SADEA), is presented in this article. The key innovations include: 1) a self-adaptive Gaussian process surrogate modeling method with a significantly reduced training time while mostly maintaining the antenna performance prediction accuracy and 2) a new hybrid surrogate model-assisted antenna optimization framework that reduces the training time and increases the convergence speed. An indoor base station antenna with 2G to 5G cellular bands (45 design variables and 12 specifications) and a 5G outdoor base station antenna (23 design variables and 18 specifications) are used to demonstrate TR-SADEA. Experimental results show that more than 90% of the training time and about 20% iterations (simulations and surrogate modeling) are reduced compared to a state-of-the-art method while obtaining high antenna performance.
机译:代理模型广泛用于天线设计,以优化效率改进。目前,目标天线通常具有少量的设计变量和规格,并且代理模型培训时间短。然而,现代天线变得越来越复杂,需要更多的设计变量和规格,使训练时间成为一个新的瓶颈,即在某些情况下,甚至长于电磁(EM)模拟时间。因此,本文介绍了一种新的方法,称为培训成本降低代理模型辅助混合差分差分演进(TR-Sadea)。关键创新包括:1)一种自适应高斯过程代理建模方法,具有显着降低的培训时间,同时大多维持天线性能预测精度和2)一种新的混合替代模型辅助天线优化框架,可减少训练时间并增加收敛速度。使用2G到5G蜂窝带(45个设计变量和12规格)的室内基站天线和5G室外基站天线(23个设计变量和18种规格)来证明TR-Sadea。实验结果表明,与最先进的方法相比,在获得高天线性能的同时减少了超过90%的训练时间和约20%的迭代(模拟和代理模拟)。

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