基于测距修正和蝙蝠优化的改进DV-Hop定位算法
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南京信息工程大学电子与信息工程学院 南京 210044

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TP393

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国家自然科学基金(61501244,61501245)、江苏省自然科学基金(BK20150932)项目资助


Improved DV-Hop localization algorithm based on ranging correction and bat optimization
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School of Electronics and Information Engineering, Nanjing University of Information Science and Technology,Nanjing 210044, China

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    摘要:

    本文对DV-Hop算法定位误差大的问题进行研究。针对DV-Hop算法在求解平均跳距和未知节点位置两个阶段的缺陷,提出一种基于测距修正和蝙蝠优化的改进DV-Hop定位算法。首先,采用最小均方误差准则求解锚节点间的平均跳距,并添加校正因子减小测距误差;其次,利用混沌映射策略初始化种群并设置阈值M控制映射的次数,采用速度加权策略控制搜索的步长,增强蝙蝠算法跳出局部最优的能力;最后,使用改进蝙蝠算法确定未知节点的位置。仿真结果表明,提出的定位算法具有更高的定位精度,相比DV-Hop算法、BADV-Hop算法、PSODV-Hop算法分别提升了32.35%、18.80%、8.16%。

    Abstract:

    This paper focuses on the problem of large positioning error of the DV-Hop algorithm. To overcome the defects of DV-Hop algorithm when solving the average jump distance and the unknown node position, this paper proposes an improved DV-Hop positioning algorithm based on ranging correction and bat optimization. Firstly, the minimum mean squared error criterion is used to solve the average jump distance between anchor nodes while a correction factor is added to reduce the ranging error. Secondly, the chaotic mapping strategy is applied to initialize the population and set the threshold M to control the number of mappings, and besides, the speed-weighted strategy is used to control the step length of the search to enhance the ability of the bat algorithm to jump out of the local optimum. Finally, the Improved Bat Algorithm is used to determine the location of the unknown node. The simulation results show that the proposed positioning algorithm has higher positioning accuracy, which is improved by 32.35%, 18.80% and 8.16% compared with DV-Hop algorithm, BADV-Hop algorithm and PSODV-Hop algorithm, respectively.

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董玉,张治中,冯姣.基于测距修正和蝙蝠优化的改进DV-Hop定位算法[J].电子测量技术,2023,46(7):110-116

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  • 在线发布日期: 2024-02-18
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