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Modified genetic programming combining with particle swarm optimization and performance criterion in solar cell fabrication

机译:改进的遗传规划结合粒子群优化和性能准则在太阳能电池制造中

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摘要

This study describes the design and development of the novel model for the process optimization of solar cell fabrication. The model performance can affect the result of the physical experiment in the solar cell fabrication because the high accuracy model can provide the closer result to the output efficiency of the physical experiment. In this study, genetic programming (GP) based modeling technique was developed for the process simulation. GP is a global modeling technique, so it is suitable for process data modeling. This study describes the modified GP algorithm to solve the constant terminal problem. In the traditional GP, the constant term can be randomly selected within the fixed range when the structure is changed. Therefore, the variation ratio of the constant is too low to fit the model well. In this study, the novel GP is proposed. The method includes particle swarm optimization (PSO) to optimize the constant term in the terminals. PSO is a strong searching algorithm without a high computation cost. Actually, through the simulation results, the modeling performance and speed can be improved by the proposed GP. Because by the proposed modeling method, the structure and parameters of the model can be optimized simultaneously, the proposed method can be used as the new global modeling approach.
机译:这项研究描述了用于太阳能电池制造过程优化的新型模型的设计和开发。模型性能会影响太阳能电池制造过程中物理实验的结果,因为高精度模型可以提供更接近物理实验输出效率的结果。在这项研究中,开发了基于遗传编程(GP)的建模技术用于过程仿真。 GP是一种全局建模技术,因此适用于过程数据建模。这项研究描述了改进的GP算法来解决常数终端问题。在传统的GP中,更改结构时可以在固定范围内随机选择常数项。因此,常数的变化率太低,无法很好地拟合模型。在这项研究中,提出了新颖的GP。该方法包括粒子群优化(PSO),以优化终端中的常数项。 PSO是一种强大的搜索算法,没有很高的计算成本。实际上,通过仿真结果,提出的GP可以提高建模性能和速度。因为通过提出的建模方法,可以同时优化模型的结构和参数,所以可以将提出的方法用作新的全局建模方法。

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