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Improving IEEE 802.11 power saving mechanism

机译:改善IEEE 802.11节能机制

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摘要

This paper presents an optimization of the power saving mechanism in the Distributed Coordination Function (DCF) in an Independent Basic Service Set (IBSS) of the IEEE 802.11 standard. In the power saving mode specified for DCF, time is divided into so-called beacon intervals. At the start of each beacon interval, each node in the power saving mode periodically wakes up for a duration called the ATIM Window. Nodes are required to be synchronized to ensure that all nodes wake up at the same time. During the ATIM window, the nodes exchange control packets to determine whether they need to stay awake for the rest of the beacon interval. The size of the ATIM window has a significant impact on energy saving and throughput achieved by the nodes. This paper proposes an adaptive mechanism to dynamically choose a suitable ATIM window size. We also allow the nodes to stay awake for only a fraction of the beacon interval following the ATIM window. On the other hand, the IEEE 802.11 DCF mode requires nodes to stay awake either for the entire beacon interval following the ATIM window or not at all. Simulation results show that the proposed approach outperforms the IEEE 802.11 power saving mechanism in terms of throughput and the amount of energy consumed.
机译:本文介绍了IEEE 802.11标准的独立基本服务集(IBSS)中的分布式协调功能(DCF)中的节能机制的优化。在为DCF指定的省电模式下,时间分为所谓的信标间隔。在每个信标间隔开始时,处于节能模式的每个节点都会在称为ATIM窗口的持续时间内定期唤醒。要求节点同步以确保所有节点同时唤醒。在ATIM窗口期间,节点交换控制数据包以确定在信标间隔的其余时间内是否需要保持清醒状态。 ATIM窗口的大小对节点的节能和吞吐量有重大影响。本文提出了一种自适应机制来动态选择合适的ATIM窗口大小。我们还允许节点在ATIM窗口之后仅在信标间隔的一小部分内保持唤醒状态。另一方面,IEEE 802.11 DCF模式要求节点在ATIM窗口之后的整个信标间隔内保持唤醒状态,或者根本不保持唤醒状态。仿真结果表明,该方法在吞吐量和能耗方面均优于IEEE 802.11节能机制。

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