optIFnet: A Capacitive Antenna Dipole Indention-Flexure Predictive Model Optimized Using Hybrid Lichtenberg Algorithm and Neural Network

IF 0.7 Q4 COMPUTER SCIENCE, ARTIFICIAL INTELLIGENCE Journal of Advanced Computational Intelligence and Intelligent Informatics Pub Date : 2023-01-20 DOI:10.20965/jaciii.2023.p0027
Mike Louie C. Enriquez, Ronnie S. Concepcion, R. Relano, Kate G. Francisco, Jonah Jahara G. Baun, Adrian Genevie G. Janairo, R. Baldovino, R. R. Vicerra, A. Bandala, E. Dadios
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Abstract

In performing underground imaging surveying, applying a coating in the antenna dipole plates with robust and durable material to stay protected against rough road features is vital to consider. By doing this, the mechanical properties of the metallic antenna dipole can be improved and be shielded from deterioration. With that, this study has developed an indentation-flexure algorithm optimized using a hybrid Lichtenberg algorithm (LA) and artificial neural network (ANN) that can predict the indentation-flexure as a function of the coating material’s elastic modulus, Poisson ratio, and thickness as well as the load antenna weight. Acrylic, epoxy, nylon 101, high-density polyethylene, and polyvinyl chloride were chosen as the top five most popular coating materials. A 120° titanium cone indenter with a 0.5-inch-diameter, slightly rounded point, and a constant compressive force of 200 N in the center was employed to plot and use a nonlinear mechanical finite element analysis on an antenna dipole plate using SolidWorks. Nature-inspired and evolutionary metaheuristics such as African vultures, Lichtenberg, and gorilla troop optimization algorithm including genetic algorithm (GA) were employed as optimized models for the hardness indentation for capacitively coupled antenna dipoles. Based on the results, the hybrid LA-ANN solution with a hidden neurons of 3000 and a sigmoid activation function is the best performing model as it acquired a MSE score of 0.0061 in validation and 0.1478 in testing compare to the other model with 0.1610 for GA with 100 hidden neurons with sigmoid activation function. Thus, LA-ANN model is considered as the optIFnet as it exhibited the best prediction performance and fastest convergence among all optimizers used.
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基于Lichtenberg算法和神经网络优化的电容天线偶极子压痕-挠曲预测模型
在进行地下成像测量时,在天线偶极板上涂上一层坚固耐用的材料,以防止粗糙的道路特征是至关重要的考虑因素。通过这样做,金属天线偶极子的机械性能可以得到改善,并防止其恶化。基于此,本研究开发了一种采用混合Lichtenberg算法(LA)和人工神经网络(ANN)优化的压痕-挠曲算法,该算法可以预测压痕-挠曲作为涂层材料弹性模量、泊松比、厚度以及负载天线重量的函数。丙烯酸、环氧树脂、尼龙101、高密度聚乙烯和聚氯乙烯被选为最受欢迎的五大涂料材料。利用SolidWorks软件对天线偶极板进行了非线性力学有限元分析,采用直径为0.5 inch、点略圆、中心恒定压缩力为200 N的120°钛锥压头。采用非洲秃鹫、Lichtenberg和大猩猩种群优化算法(包括遗传算法)等自然启发和进化元启发式算法作为电容耦合天线偶极子硬度压痕的优化模型。结果表明,具有3000个隐藏神经元和一个sigmoid激活函数的混合LA-ANN解决方案是性能最好的模型,验证时的MSE得分为0.0061,测试时的MSE得分为0.1478,而具有100个隐藏神经元和sigmoid激活函数的GA模型的MSE得分为0.1610。因此,LA-ANN模型在所有优化器中表现出最好的预测性能和最快的收敛速度,被认为是最优的。
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来源期刊
CiteScore
1.50
自引率
14.30%
发文量
89
期刊介绍: JACIII focuses on advanced computational intelligence and intelligent informatics. The topics include, but are not limited to; Fuzzy logic, Fuzzy control, Neural Networks, GA and Evolutionary Computation, Hybrid Systems, Adaptation and Learning Systems, Distributed Intelligent Systems, Network systems, Multi-media, Human interface, Biologically inspired evolutionary systems, Artificial life, Chaos, Complex systems, Fractals, Robotics, Medical applications, Pattern recognition, Virtual reality, Wavelet analysis, Scientific applications, Industrial applications, and Artistic applications.
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