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首页> 外文期刊>International journal of mobile network design and innovation >Task classification-aware data aggregation scheduling algorithm in wireless sensor networks
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Task classification-aware data aggregation scheduling algorithm in wireless sensor networks

机译:无线传感器网络中的任务分类感知数据聚合调度算法

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摘要

In order to minimise the delay of data aggregation scheduling, a task classification aware data aggregation scheduling algorithm is proposed. Through the multi-power and multi-channel approach of sensor nodes, maximum independent sets are used to construct network topology structure based on data aggregation backbone tree. According to the scheduling priority, the data aggregation scheduling within clusters is achieved by approximating the greedy algorithm. Besides, combined with sparse coefficient, sensing task type reduces the amount of data transmission, and then the level of cluster head nodes in the network is used to achieve data aggregation scheduling between clusters. Numerical results show that the proposed algorithm can reduce cluster heads data traffic and energy consumption, while shortening the data aggregation delay and enhancing the network survivability.
机译:为了最小化数据聚合调度的延迟,提出了一种任务感知感知的数据聚合调度算法。通过传感器节点的多功率,多通道方法,采用最大独立集来构建基于数据聚合骨干树的网络拓扑结构。根据调度优先级,通过近似贪婪算法来实现集群内的数据聚合调度。此外,结合稀疏系数,感知任务类型减少了数据传输量,然后利用网络中簇头节点的级别来实现簇之间的数据聚合调度。数值结果表明,该算法可以减少簇头数据流量和能耗,同时缩短数据聚合时延,提高网络生存能力。

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