Machine Learning Techniques for Predicting Metamaterial Microwave Absorption Performance: A Comparison

被引:39
作者
Jain, Prince [1 ]
Chhabra, Himanshu [1 ]
Chauhan, Urvashi [2 ]
Prakash, Krishna [3 ]
Samant, Piyush [4 ]
Singh, Dhiraj Kumar [5 ]
Soliman, Mohamed S. [6 ]
Islam, Mohammad Tariqul [7 ]
机构
[1] Parul Univ, Parul Inst Technol, Dept Mechatron Engn, Vadodara 391760, Gujarat, India
[2] Parul Univ, Dept Elect & Commun Engn, Vadodara 391760, Gujarat, India
[3] NRI Inst Technol, Dept Elect & Commun, Vijayawada 521212, Andhra Pradesh, India
[4] Mirxes Labs Pvt Ltd, Res & Dev, Singapore 138667, Singapore
[5] Chandigarh Univ, Kalpana Chawla Ctr Res Space Sci & Technol, Mohali 140413, Punjab, India
[6] Taif Univ, Coll Engn, Dept Elect Engn, Taif 21944, Saudi Arabia
[7] Univ Kebangsaan Malaysia, Fac Engn & Built Environm, Dept Elect Elect & Syst Engn, Bangi 43600, Selangor, Malaysia
关键词
Decision tree; equivalent circuit analysis; extra trees; machine learning; metamaterial absorber; random forest; ABSORBER; REGRESSION; MULTIBAND; FORESTS;
D O I
10.1109/ACCESS.2023.3332731
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
This work presents a metamaterial absorber (MMA) for X- and Ku-bands with a metallic resonating patch on top and a ground plane separated by substrate FR-4 with a thickness of 0.053 lambda at the lowest resonance frequency. The proposed MMA demonstrates perfect absorption of 99.42, 98.48, 98.92, and 99.34 % at 9.948, 13.26, 14.92, and 15.80 GHz, respectively at normal incidence. The proposed MMA demonstrates perfect absorption for a polarization and incident angle over a wide range of angles up to 45(degrees). To understand the fundamental EM behavior of the metamaterial structure, equivalent circuit analysis was carried out, and the circuit outputs accorded with the simulation results. This article also compares various machine learning (ML) methods for optimizing the design and predictive modeling of MMAs, such as decision trees, K-nearest neighbors, random forests, extra trees (ET), bagging, LightGBM, XGBoost, hist gradient boosting, cat boost, and gradient boosting regressors. The primary objective is to assess the usefulness of each regressor technique in estimating the performance of MMAs using multiple tests ranging from TC-40 to TC-80 and performance metrics such as adjusted R-squared score, MSE, RMSE, and MAE, in which the ET regressor excels. Simulation results suggest that ML-based techniques can save simulation resources and time while still being an efficient tool for predicting absorber behavior at intermediate and subsequent frequencies.
引用
收藏
页码:128774 / 128783
页数:10
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