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Deployment optimization for 3D industrial wireless sensor networks based on particle swarm optimizers with distributed parallelism

机译:基于分布式并行的粒子群优化器的3D工业无线传感器网络部署优化

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摘要

For wireless sensor networks (WSNs), traditional studies on deployment problems center upon 2D plane or 3D full space. However, practical situations are more complex, and simplifications may hinder real-world application. In this paper, we study the scenario of a 3D industrial space with obstacles (i.e., devices). Heterogeneous directional sensor nodes and relay nodes are deployed to maximize coverage and prolong lifetime, respectively. Specifically, sensor nodes are deployed for the maximization of coverage; after the positions of sensor nodes are generated, we deploy relay nodes to maximize the lifetime. A modified 3D coverage model and a lifetime model with reliability constraint are presented to facilitate the mathematical analysis of the deployment problem. For the NP-hard deployment problem, two particle swarm optimizers, the cooperative coevolutionary particle swarm optimization 2 (CCPSO2) and the comprehensive learning particle swarm optimizer (CLPSO), are employed. To reduce the computation time, distributed parallelism based on message passing interface (MPI) is conducted by dividing the 3D deployment space. Extensive experimentations are conducted by using various numbers of sensor nodes and relay nodes, and thorough understandings are obtained w.r.t. both the deployment problem and the optimizers.
机译:对于无线传感器网络(WSN),有关部署问题的传统研究集中在2D平面或3D全空间。但是,实际情况更加复杂,并且简化可能会阻碍实际应用。在本文中,我们研究了具有障碍物(即设备)的3D工业空间的场景。部署了异向定向传感器节点和中继节点以分别最大化覆盖范围并延长使用寿命。具体来说,部署传感器节点以最大化覆盖范围;生成传感器节点的位置后,我们将部署中继节点以最大化使用寿命。提出了一种经过修改的3D覆盖模型和具有可靠性约束的寿命模型,以方便对部署问题进行数学分析。对于NP硬部署问题,使用了两个粒子群优化器,即协同协进化粒子群优化2(CCPSO2)和综合学习粒子群优化器(CLPSO)。为了减少计算时间,通过划分3D部署空间来进行基于消息传递接口(MPI)的分布式并行性。通过使用各种数量的传感器节点和中继节点进行了广泛的实验,并获得了透彻的理解。部署问题和优化程序。

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