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Sleep-wake up scheduling with probabilistic coverage model in sensor networks

机译:传感器网络中具有概率覆盖模型的睡眠唤醒计划

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Energy optimisation is one of the important issues in the research of wireless sensor networks (WSNs). In the application of monitoring, a large number of sensors are scattered uniformly to cover a collection of points of interest (Pols) distributed randomly in the monitored area. Since the energy of battery-powered sensor is limited in WSNs, sensors are scheduled to wake up in a large-scale sensor network application. In this paper, we consider how to reduce the energy consumption and prolong the lifetime of WSNs through wake-up scheduling with probabilistic sensing model in the large-scale application of monitoring. To extend the lifetime of sensor network, we need to balance the energy consumption of sensors so that there will not be too much redundant energy in some sensors before the WSN terminates. The detection probability and false alarm probability are taken into consideration to achieve a better performance and reveal the real sensing process which is characterised in the probabilistic sensing model. Data fusion is also introduced to utilise information of sensors so that a Pol in the monitored area may be covered by multiple sensors collaboratively, which will decrease the number of sensors that cover the monitored region. Based on the probabilistic model and data fusion, minimum weight probabilistic coverage problem is formulated in this paper. We also propose a greedy method and modified genetic algorithm based on the greedy method to address the problem. Simulation experiments are conducted to demonstrate the advantages of our proposed algorithms over existing work.
机译:能量优化是无线传感器网络(WSN)研究中的重要问题之一。在监视应用中,大量传感器均匀分散,以覆盖在监视区域中随机分布的兴趣点(Pol)的集合。由于电池供电的传感器的能量在WSN中受到限制,因此传感器计划在大型传感器网络应用中唤醒。本文考虑了在大规模监控中如何通过概率感知模型通过唤醒调度来减少无线传感器网络的能耗并延长其使用寿命。为了延长传感器网络的寿命,我们需要平衡传感器的能耗,以便在WSN终止之前某些传感器中不会有过多的冗余能量。考虑了检测概率和虚警概率,以实现更好的性能并揭示概率感测模型中表征的真实感测过程。还引入了数据融合以利用传感器的信息,以便监视区域中的Pol可以被多个传感器共同覆盖,这将减少覆盖监视区域的传感器数量。基于概率模型和数据融合,提出了最小权重概率覆盖问题。我们还提出了贪婪方法和基于贪婪方法的改进遗传算法来解决该问题。进行仿真实验以证明我们提出的算法优于现有工作的优势。

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