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Introducing genetic modification concept to optimize rational function models (RFMs) for georeferencing of satellite imagery

机译:引入遗传修饰概念以优化用于卫星图像地理配准的有理函数模型(RFM)

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摘要

Genetic algorithms (GAs) are frequently used for optimization of remote sensing models. Recently, they have been used in optimization of rational function models (RFMs) for georeferencing of satellite images. In this way, fewer ground control points (GCPs) are needed while accurate results are achieved in comparison to manual or try and error based approaches of terrain dependent RFM term selection. However, GAs are quite inefficient in terms of computational speed. In this article, a novel optimization approach adopting a newly introduced concept in natural sciences called genetic modification' is proposed to speed up the basic GA. According to the proposed method, a qualification coefficient is defined to examine the qualification of individual genes. Therefore, qualified genes are identified and are used to produce a new set of chromosomes in each iteration of the algorithm as transgenic chromosomes'. Considering these chromosomes as a part of parents for next generation, desired characteristics (optimal parameters) appeared with an efficient speed. To evaluate the performance of the proposed algorithm, over two different case studies, RFM is optimized using both proposed and basic GAs. The results indicate that the optimization speed is improved by 20 times, while the accuracies are preserved.
机译:遗传算法(GA)通常用于优化遥感模型。最近,它们已用于优化有理函数模型(RFM),以对卫星图像进行地理配准。通过这种方式,与基于地形的RFM术语选择的手动或基于尝试和错误的方法相比,所需的地面控制点(GCP)更少,同时获得了准确的结果。但是,就计算速度而言,遗传算法效率很低。在本文中,提出了一种新的优化方法,该方法采用了自然科学中一个新引入的概念,即基因修饰,以加快基本遗传算法的速度。根据提出的方法,定义了限定系数以检查单个基因的限定。因此,鉴定出合格的基因,并在算法的每次迭代中将它们用作转基因染色体以产生一组新的染色体。考虑到这些染色体是下一代父母的一部分,期望的特征(最佳参数)以有效的速度出现。为了评估提出的算法的性能,在两个不同的案例研究中,使用提出的GA和基本GA对RFM进行了优化。结果表明,优化速度提高了20倍,同时保留了精度。

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