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A Novel Link Quality Prediction Algorithm forWireless Sensor Networks

机译:一种新的无线传感器网络链路质量预测算法

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Ahead knowledge of link quality can reduce the energy consumption of wireless sensor networks. In this paper, we propose a cloud reasoning-based link quality prediction algorithm for wireless sensor networks. A large number of link quality samples are collected from different scenarios, and their RSSI, LQI, SNR and PRR parameters are classified by a self-adaptive Gaussian cloud transformation algorithm. Taking the limitation of nodesa?? resources into consideration, the Apriori algorithm is applied to determine association rules between physical layer and link layer parameters. A cloud reasoning algorithm that considers both short- and long-term time dimensions and current and historical cloud models is then proposed to predict link quality. Compared with the existing window mean exponentially weighted method, the proposed algorithm captures link changes more accurately, facilitating more stable prediction of link quality.
机译:预先了解链路质量可以减少无线传感器网络的能耗。在本文中,我们提出了一种基于云推理的无线传感器网络链路质量预测算法。从不同的场景中收集了大量的链路质量样本,并通过自适应高斯云变换算法对它们的RSSI,LQI,SNR和PRR参数进行分类。考虑节点的局限性?考虑到资源,Apriori算法用于确定物理层和链路层参数之间的关联规则。然后提出一种考虑短期和长期时间维度以及当前和历史云模型的云推理算法来预测链接质量。与现有的窗口均值指数加权方法相比,该算法可以更准确地捕获链路变化,从而可以更稳定地预测链路质量。

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