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基于高斯的自适应鱼群迁移优化算法在移动传感器网络定位误差优化中的应用

Gaussian-Based Adaptive Fish Migration Optimization Applied to Optimization Localization Error of Mobile Sensor Networks.

作者信息

Liu Yong, Zheng Wei-Min, Liu Shangkun, Chai Qing-Wei

机构信息

College of Ocean Science and Engineering, Shandong University of Science and Technology, Qingdao 266590, China.

Laboratory for Marine Geology, Qingdao National Laboratory for Marine Science and Technology, Qingdao 266237, China.

出版信息

Entropy (Basel). 2022 Aug 12;24(8):1109. doi: 10.3390/e24081109.

Abstract

Location information is the primary feature of wireless sensor networks, and it is more critical for Mobile Wireless Sensor Networks (MWSN) to monitor specific targets. How to improve the localization accuracy is a challenging problem for researchers. In this paper, the Gaussian probability distribution model is applied to randomize the individual during the migration of the Adaptive Fish Migration Optimization (AFMO) algorithm. The performance of the novel algorithm is verified by the CEC 2013 test suit, and the result is compared with other famous heuristic algorithms. Compared to other well-known heuristics, the new algorithm achieves the best results in almost 21 of all 28 test functions. In addition, the novel algorithm significantly reduces the localization error of MWSN, the simulation results show that the accuracy of the new algorithm is more than 5% higher than that of other heuristic algorithms in terms of mobile sensor node positioning, and more than 100% higher than that without the heuristic algorithm.

摘要

位置信息是无线传感器网络的主要特征,对于移动无线传感器网络(MWSN)监测特定目标而言更为关键。如何提高定位精度是研究人员面临的一个具有挑战性的问题。本文将高斯概率分布模型应用于自适应鱼群迁移优化(AFMO)算法迁移过程中的个体随机化。通过CEC 2013测试套件验证了该新算法的性能,并将结果与其他著名的启发式算法进行了比较。与其他知名启发式算法相比,新算法在所有28个测试函数中的近21个中取得了最佳结果。此外,新算法显著降低了MWSN的定位误差,仿真结果表明,在移动传感器节点定位方面,新算法的精度比其他启发式算法高出5%以上,比没有启发式算法的情况高出100%以上。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/29bf/9407049/1b89b4ad6bc1/entropy-24-01109-g001.jpg

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