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A Memetic Algorithm for the Location-Based Continuously Operating Reference Stations Placement Problem in Network Real-Time Kinematic

机译:网络实时运动中基于位置的连续运行参考站布局问题的模因算法

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摘要

Network real-time kinematic (NRTK) is a technology that can provide centimeter-level accuracy positioning services in real-time, and it is enabled by a network of continuously operating reference stations (CORS). The location-oriented CORS placement problem is an important problem in the design of a NRTK as it will directly affect not only the installation and operational cost of the NRTK, but also the quality of positioning services provided by the NRTK. This paper presents a memetic algorithm (MA) for the location-oriented CORS placement problem, which hybridizes the powerful explorative search capacity of a genetic algorithm and the efficient and effective exploitative search capacity of a local optimization. Experimental results have shown that the MA has better performance than existing approaches. In this paper, we also conduct an empirical study about the scalability of the MA, effectiveness of the hybridization technique and selection of crossover operator in the MA.
机译:网络实时运动(NRTK)是一项可以实时提供厘米级精度定位服务的技术,并且由连续运行的参考站(CORS)网络启用。面向位置的CORS放置问题是NRTK设计中的重要问题,因为它不仅会直接影响NRTK的安装和运营成本,还会直接影响NRTK提供的定位服务的质量。本文提出了一种面向位置的CORS放置问题的模因算法(MA),该算法将遗传算法的强大探索性搜索能力与局部优化的高效有效探索性搜索能力混合在一起。实验结果表明,MA具有比现有方法更好的性能。在本文中,我们还对MA的可扩展性,杂交技术的有效性以及MA中交叉算子的选择进行了实证研究。

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