用GPU加速天线仿真,为机器学习提供海量数据。
Electromagnetic Simulations of Antennas on GPUs for Machine Learning Applications
- 基于开源软件gprMax,在GPU上批量仿真天线
- 入门级GPU性能远超高端CPU,顶级游戏卡快18倍
- 开源软件结果媲美商业软件,适合做数据集
本研究提出一种基于GPU的天线电磁仿真框架,基于开源电磁仿真软件gprMax,用于支持天线设计与优化的机器学习应用。该框架通过在GPU上大规模仿真具有预设或随机形状参数的天线,生成适用于机器学习和代理模型的数据集。尽管机器学习方法能有效求解诸多问题,但其训练需大量样本,而传统电磁仿真因计算复杂度高,在有限时间内难以生成足够数据。本研究利用GPU显著提升仿真效率,实现快速生成海量天线仿真数据。同时,对比了多种机器学习与深度学习模型在天线参数估计中的表现。结果显示,入门级GPU的计算性能显著优于高端CPU,而顶级游戏级GPU的性能可达到高端CPU的约18倍。此外,在空间分辨率足够精细的前提下,开源软件gprMax的仿真结果与商业电磁软件相当,验证了其在微带天线仿真中的可靠性。
原文摘要 · Abstract (English)
This study proposes an antenna simulation framework powered by graphics processing units (GPUs) based on an open-source electromagnetic (EM) simulation software (gprMax) for machine learning applications of antenna design and optimization. Furthermore, it compares the simulation results with those obtained through commercial EM software. The proposed software framework for machine learning and surrogate model applications will produce antenna data sets consisting of a large number of antenna simulation results using GPUs. Although machine learning methods can attain the optimum solutions for many problems, they are known to be data-hungry and require a great deal of samples for the training stage of the algorithms. However, producing a sufficient number of training samples in EM applications within a limited time is challenging due to the high computational complexity of EM simulations. Therefore, GPUs are utilized in this study to simulate a large number of antennas with predefined or random antenna shape parameters to produce data sets. Moreover, this study also compares various machine learning and deep learning models in terms of antenna parameter estimation performance. This study demonstrates that an entry-level GPU substantially outperforms a high-end CPU in terms of computational performance, while a high-end gaming GPU can achieve around 18 times more computational performance compared to a high-end CPU. Moreover, it is shown that the open-source EM simulation software can deliver similar results to those obtained via commercial software in the simulation of microstrip antennas when the spatial resolution of the simulations is sufficiently fine.
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