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Latency-sensitive power control for wireless ad-hoc networks

机译:无线ad-hoc网络的延迟敏感型功率控制

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摘要

We investigate the impact of power control on latency in wireless ad-hoc networks. If transmission power is increased, interference increases, thus reducing network capacity. A node sending/relaying delay-sensitive real-time application traffic can, however, use a higher power level to reduce latency, if it considers information about load and channel contention at its neighboring nodes. Based on this observation, we formulate a new distributed power control protocol, Load-Aware Power Control (LAPC), that heuristically considers low end-to-end latency when selecting power levels. We study the performance of LAPC via simulations, varying the network density, node dispersion patterns, and traffic load. Our simulation results demonstrate that LAPC achieves an average end-to-end latency improvement of 54% over the case when nodes are transmitting at the highest power possible, and an average end-to-end latency improvement of 33% over the case when nodes are transmitting using the lowest power possible, for uniformly dispersed nodes in a lightly loaded network.
机译:我们调查了功率控制对无线自组织网络中延迟的影响。如果增加发射功率,则干扰会增加,从而降低网络容量。但是,如果节点发送/中继对延迟敏感的实时应用程序流量,则它会考虑其相邻节点上有关负载和信道争用的信息,从而可以使用较高的功率水平来减少延迟。基于此观察,我们制定了一个新的分布式电源控制协议负载感知功率控制(LAPC),该协议在选择功率级别时会启发性地考虑低端到端延迟。我们通过仿真,改变网络密度,节点分散模式和流量负载来研究LAPC的性能。我们的仿真结果表明,与节点以最大功率传输时相比,LAPC实现了平均端到端延迟改善54%,平均端到端延迟改善为对于轻负载网络中均匀分散的节点,当节点以尽可能低的功率进行传输时,这种情况的33%。

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