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Calibration of the Parameters of a Model of an Engineering System Using the Global Optimization Method

机译:使用全局优化方法校准工程系统模型的参数

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摘要

The calibration of the model is one of the most important steps in the development of models of engineering systems. A new approach is presented in this study to calibrate a complex multi-domain system. This approach respects the real characteristics of the circuit, the accuracy of the results, and minimizes the cost of the experimental phase. This paper proposes a complete method, the Global Optimization Method for Parameter Calibration (GOMPC). This method uses an optimization technique coupled with the simulated model on simulation software. In this paper, two optimization techniques, the Genetic Algorithm (GA) and the two-level Genetic Algorithm, are applied and then compared on two case studies: a theoretical and a real hydro-electromechanical circuit. In order to optimize the number of measured outputs, a sensitivity analysis is used to identify the objective function (OBJ) of the two studied optimization techniques. Finally, results concluded that applying GOMPC by combining the two-level GA with the simulated model was an efficient solution as it proves its accuracy and efficiency with less computation time. It is believed that this approach is able to converge to the expected results and to find the system's unknown parameters faster and with more accuracy than GA.
机译:模型的校准是工程系统模型开发中最重要的步骤之一。在这项研究中提出了一种新方法来校准复杂的多域系统。这种方法尊重电路的实际特性,结果的准确性,并最大程度地减少了实验阶段的成本。本文提出了一种完整的方法,即用于参数校准的全局优化方法(GOMPC)。该方法使用优化技术,并在仿真软件上结合了仿真模型。在本文中,应用了两种优化技术,即遗传算法(GA)和两级遗传算法,然后在两个案例研究中进行了比较:理论和实际的水力机电电路。为了优化测量输出的数量,使用灵敏度分析来确定两种研究的优化技术的目标函数(OBJ)。最后,结果得出结论,将两级遗传算法与模拟模型相结合应用GOMPC是一种有效的解决方案,因为它证明了其准确性和效率,并且计算时间更少。相信这种方法能够收敛到预期结果,并且比GA更快,更准确地找到系统的未知参数。

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