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首页> 外文期刊>International Journal of Physical Sciences >Monitoring of the genetic algorithm operators in application to the GaAs0.7Sb0.3/GaAs single quantum well nanostructure
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Monitoring of the genetic algorithm operators in application to the GaAs0.7Sb0.3/GaAs single quantum well nanostructure

机译:遗传算法算子在GaAs0.7Sb0.3 / GaAs单量子阱纳米结构中的应用监测

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摘要

In this work we investigated some new aspects of a recently introduced hybrid method which was a combination of Genetic algorithm, Monte Carlo integration schema and variational method. We also added some new features to the method in order to reduce the computational costs. Now we have introduced the biased Genetic Monte Carlo Variational (BGMV). With the help of different components of the method like initial physical and computational parameters we have tried to find a more trustworthy method for nanostructure investigations. It is shown that criterions like saturation of a quantity with respect to different parameters of the Genetic Algorithm like number of Genetic iterations may not lead to accurate results. CPU time of the program as a function of the number of genetic iterations for different elitist percent is depicted. Exciton binding energy of GaAs0.7Sb0.3/GaAs is obtained.
机译:在这项工作中,我们研究了最近引入的混合方法的一些新方面,该方法是遗传算法,蒙特卡洛积分方案和变分方法的组合。我们还为该方法添加了一些新功能,以减少计算成本。现在,我们介​​绍了有偏遗传蒙特卡洛变异(BGMV)。借助于该方法的不同组成部分(如初始物理和计算参数),我们试图找到一种更值得信赖的纳米结构研究方法。结果表明,诸如数量相对于遗传算法的不同参数的饱和度之类的准则(如遗传迭代次数)可能不会导致准确的结果。描绘了程序的CPU时间与不同精英百分比的遗传迭代次数的关系。获得了GaAs0.7Sb0.3 / GaAs的激子结合能。

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