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Multi-objective genetic algorithm applied to spectroscopic ellipsometry of organic-inorganic hybrid planar waveguides

机译:多目标遗传算法在有机-无机混合平面波导椭圆偏振光谱中的应用

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摘要

The applicably of multi-objective optimization to ellipsometric data analysis is presented and a method to handle complex ellipsometric problems such as multi sample or multi angle analysis using multi-objective optimization is described. The performance of a multi-objective genetic algorithm (MOGA) is tested against a single objective common genetic algorithm (CGA). The procedure is applied to the characterization (refractive index and thickness) of planar waveguides intended for the production of optical components prepared sol-gel derived organic-inorganic hybrids, so-called di-ureasils, modified with zirconium tetrapropoxide, Zr(OPr(n))(4) deposited on silica on silicon substrates. The results show that for the same initial conditions, MOGA performs better than the CGA, showing a higher success rate in the task of finding the best final solution. (C) 2010 Optical Society of America
机译:提出了多目标优化在椭偏数据分析中的应用,并描述了一种处理复杂的椭偏问题的方法,如使用多目标优化的多样本或多角度分析。针对单目标通用遗传算法(CGA)测试了多目标遗传算法(MOGA)的性能。该程序适用于平面波导的表征(折射率和厚度),该平面波导用于生产光学组件,该组件由溶胶-凝胶衍生的有机-无机杂化物(所谓的双脲)修饰,并用四氧化锆锆Zr(OPr(n ))(4)沉积在硅基板上的二氧化硅上。结果表明,在相同的初始条件下,MOGA的性能要优于CGA,在寻找最佳最终解决方案的任务中显示出更高的成功率。 (C)2010年美国眼镜学会

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