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On the application of nature-inspired grey wolf optimizer algorithm in geodesy

机译:论自然启发灰狼优化算法在大地测量中的应用

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摘要

Nowadays, solving hard optimization problems using metaheuristic algorithms has attracted bountiful attention. Generally, these algorithms are inspired by natural metaphors. A novel metaheuristic algorithm, namely Grey Wolf Optimization (GWO), might be applied in the solution of geodetic optimization problems. The GWO algorithm is based on the intelligent behaviors of grey wolves and a population based stochastic optimization method. One great advantage of GWO is that there are fewer control parameters to adjust. The algorithm mimics the leadership hierarchy and hunting mechanism of grey wolves in nature. In the present paper, the GWO algorithm is applied in the calibration of an Electronic Distance Measurement (EDM) instrument using the Least Squares (LS) principle for the first time. Furthermore, a robust parameter estimator called the Least Trimmed Absolute Value (LTAV) is applied to a leveling network for the first time. The GWO algorithm is used as a computing tool in the implementation of robust estimation. The results obtained by GWO are compared with the results of the ordinary LS method. The results reveal that the use of GWO may provide efficient results compared to the classical approach.
机译:如今,采用启发式算法求解难优化问题已引起重视丰富。一般情况下,这些算法是由自然的隐喻启发。一种新型的启发式算法,即灰太狼优化(GWO),可能会在大地优化问题的解决方案被应用。所述GWO算法基于灰色狼的智能行为和人口基于随机优化方法。 GWO的一个大优势是,有更少的控制参数进行调整。该算法模仿领导层次结构和性质灰狼狩猎机制。在本论文中,GWO算法是在电子测距(EDM)仪器的校准使用最小二乘(LS)原理的第一次施用。此外,鲁棒参数估计器称为最低修剪绝对值(LTAV)被施加到一个水准网首次。所述GWO算法被用作鲁棒估计的执行的计算工具。通过GWO得到的结果与普通方法LS的结果进行比较。结果表明,使用GWO可能比传统方法提供有效的结果。

著录项

  • 作者

    M. Yetkin; O. Bilginer;

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  • 年度 2020
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  • 原文格式 PDF
  • 正文语种 eng
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