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Mobile Data Gathering with Load Balanced Clustering and Dual Data Uploading in Wireless Sensor Networks

机译:无线传感器网络中具有负载平衡群集和双数据上传功能的移动数据收集

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摘要

In this paper, a three-layer framework is proposed for mobile data collection in wireless sensor networks, which includes the sensor layer, cluster head layer, and mobile collector (called SenCar) layer. The framework employs distributed load balanced clustering and dual data uploading, which is referred to as LBC-DDU. The objective is to achieve good scalability, long network lifetime and low data collection latency. At the sensor layer, a distributed load balanced clustering (LBC) algorithm is proposed for sensors to self-organize themselves into clusters. In contrast to existing clustering methods, our scheme generates multiple cluster heads in each cluster to balance the work load and facilitate dual data uploading. At the cluster head layer, the inter-cluster transmission range is carefully chosen to guarantee the connectivity among the clusters. Multiple cluster heads within a cluster cooperate with each other to perform energy-saving inter-cluster communications. Through inter-cluster transmissions, cluster head information is forwarded to SenCar for its moving trajectory planning. At the mobile collector layer, SenCar is equipped with two antennas, which enables two cluster heads to simultaneously upload data to SenCar in each time by utilizing multi-user multiple-input and multiple-output (MU-MIMO) technique. The trajectory planning for SenCar is optimized to fully utilize dual data uploading capability by properly selecting polling points in each cluster. By visiting each selected polling point, SenCar can efficiently gather data from cluster heads and transport the data to the static data sink. Extensive simulations are conducted to evaluate the effectiveness of the proposed LBC-DDU scheme. The results show that when each cluster has at most two cluster heads, LBC-DDU achieves over 50 percent energy saving per node and 60 percent energy saving on cluster heads comparing with data collection through multi-hop relay to the static data sink, and 20 percent - horter data collection time compared to traditional mobile data gathering.
机译:本文提出了一个三层框架,用于无线传感器网络中的移动数据收集,包括传感器层,簇头层和移动收集器(称为SenCar)层。该框架采用分布式负载平衡群集和双重数据上传,称为LBC-DDU。目的是实现良好的可伸缩性,较长的网络寿命和较低的数据收集延迟。在传感器层,提出了一种分布式负载平衡聚类(LBC)算法,以使传感器将自身自组织为群集。与现有的聚类方法相比,我们的方案在每个聚类中生成多个聚类头,以平衡工作负载并促进双重数据上传。在群集头层,仔细选择群集之间的传输范围,以确保群集之间的连通性。集群中的多个集群头相互协作以执行节能的集群间通信。通过集群间传输,将集群头信息转发给SenCar进行移动轨迹规划。在移动收集器层,SenCar配备了两个天线,这使得两个簇头能够通过利用多用户多输入多输出(MU-MIMO)技术每次同时将数据上传到SenCar。通过正确选择每个群集中的轮询点,SenCar的轨迹规划经过了优化,可以充分利用双重数据上传功能。通过访问每个选定的轮询点,SenCar可以有效地从集群头收集数据并将数据传输到静态数据接收器。进行了广泛的仿真,以评估所提出的LBC-DDU方案的有效性。结果表明,与通过多跳中继到静态数据接收器的数据收集相比,当每个群集最多具有两个群集头时,与每个节点的多节点中继数据收集相比,LBC-DDU可以使每个节点节省50%以上的能耗,在群集头上节省60%的能耗。百分比-与传统的移动数据收集相比,可怕的数据收集时间。

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