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A 3D multi-objective optimization planning algorithm for wireless sensor networks

机译:无线传感器网络的3D多目标优化规划算法

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摘要

The complexity of planning a wireless sensor network is dependent on the aspects of optimization and on the application requirements. Even though Murphy's Law is applied everywhere in reality, a good planning algorithm will assist the designers to be aware of the short plates of their design and to improve them before the problems being exposed at the real deployment. A 3D multi-objective planning algorithm is proposed in this paper to provide solutions on the locations of nodes and their properties. It employs a developed ray-tracing scheme for sensing signal and radio propagation modelling. Therefore it is sensitive to the obstacles and makes the models of sensing coverage and link quality more practical compared with other heuristics that use ideal unit-disk models. The proposed algorithm aims at reaching an overall optimization on hardware cost, coverage, link quality and lifetime. Thus each of those metrics are modelled and normalized to compose a desirability function. Evolutionary algorithm is designed to efficiently tackle this NP-hard multi-objective optimization problem. The proposed algorithm is applicable for both indoor and outdoor 3D scenarios. Different parameters that affect the performance are analyzed through extensive experiments; two state-of-the-art algorithms are rebuilt and tested with the same configuration as that of the proposed algorithm. The results indicate that the proposed algorithm converges efficiently within 600 iterations and performs better than the compared heuristics.
机译:规划无线传感器网络的复杂性取决于优化方面和应用需求。即使墨菲定律在现实中无处不在,但良好的规划算法将有助于设计人员了解设计的短板,并在实际部署中发现问题之前对其进行改进。提出了一种3D多目标规划算法,为节点的位置及其属性提供了解决方案。它采用了开发的光线跟踪方案来进行信号和无线电传播建模。因此,与使用理想单位磁盘模型的其他启发式方法相比,它对障碍很敏感,并使感知覆盖率和链接质量的模型更加实用。所提出的算法旨在实现对硬件成本,覆盖范围,链路质量和寿命的整体优化。因此,对那些度量中的每一个进行建模和归一化以构成期望函数。进化算法旨在有效解决这一NP难的多目标优化问题。所提出的算法适用于室内和室外3D场景。通过广泛的实验分析了影响性能的不同参数。两种最先进的算法均以与所提出算法相同的配置重建和测试。结果表明,所提出的算法在600次迭代内有效收敛,并且性能优于比较的启发式算法。

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