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On the Impact of Localization and Density Control Algorithms in Target Tracking Applications for Wireless Sensor Networks

机译:定位和密度控制算法在无线传感器网络目标跟踪应用中的影响

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摘要

Target tracking is an important application of wireless sensor networks. The networks' ability to locate and track an object is directed linked to the nodes' ability to locate themselves. Consequently, localization systems are essential for target tracking applications. In addition, sensor networks are often deployed in remote or hostile environments. Therefore, density control algorithms are used to increase network lifetime while maintaining its sensing capabilities. In this work, we analyze the impact of localization algorithms (RPE and DPE) and density control algorithms (GAF, A3 and OGDC) on target tracking applications. We adapt the density control algorithms to address the k-coverage problem. In addition, we analyze the impact of network density, residual integration with density control, and k-coverage on both target tracking accuracy and network lifetime. Our results show that DPE is a better choice for target tracking applications than RPE. Moreover, among the evaluated density control algorithms, OGDC is the best option among the three. Although the choice of the density control algorithm has little impact on the tracking precision, OGDC outperforms GAF and A3 in terms of tracking time.
机译:目标跟踪是无线传感器网络的重要应用。网络定位和跟踪对象的能力与节点自身定位的能力直接相关。因此,定位系统对于目标跟踪应用至关重要。此外,传感器网络通常部署在远程或敌对环境中。因此,密度控制算法用于增加网络寿命,同时保持其传感能力。在这项工作中,我们分析了定位算法(RPE和DPE)和密度控制算法(GAF,A3和OGDC)对目标跟踪应用程序的影响。我们采用密度控制算法来解决k覆盖问题。此外,我们分析了网络密度,残余密度集成和密度控制以及k覆盖对目标跟踪精度和网络寿命的影响。我们的结果表明,与RPE相比,DPE是目标跟踪应用程序的更好选择。此外,在评估的密度控制算法中,OGDC是这三种算法中的最佳选择。尽管密度控制算法的选择对跟踪精度几乎没有影响,但是在跟踪时间方面,OGDC优于GAF和A3。

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