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首页> 外文期刊>International Journal of Distributed Sensor Networks >Improving Energy Adaptivity of Constructive Interference-Based Flooding for WSN-AF
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Improving Energy Adaptivity of Constructive Interference-Based Flooding for WSN-AF

机译:提高基于构造干扰的WSN-AF洪水的能量适应性

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Constructive interference (CI) is a synchronous transmission technique for multiple senders transmitting the same packet simultaneously in wireless sensor networks (WSNs). CI enables fast and reliable network flooding in order to reduce the scheduling overhead of MAC protocols, to achieve accurate time synchronization, to improve link quality of lossy links, and to realize efficient data collection. By achieving microsecond level time synchronization, Glossy realizes millisecond level CI-based flooding and 99% reliability. However, Glossy produces substantial unnecessary data forwarding, which significantly reduces the network lifetime. This is a very critical problem, especially in energy-limited large-scale wireless sensor networks for agriculture and forestry (WSN-AF) system. In this paper, we present an energy adaptive CI-based flooding protocol (EACIF) by exploiting CI in WSN-AF. EACIF proposes a distributed active nodes selection algorithm (ANSA) to reduce redundant transmissions, thereby significantly reducing energy consumption and flooding latency. We estimate the performance of EACIF both with real data traces and with uniformly distributed topology. Simulation results show that EACIF achieves almost the same packet reception ratio (PRR) as Glossy (e.g., 99%), while reducing 63.96% energy consumption. EACIF also reduces 25% flooding latency. When the packet interval is 30 seconds, EACIF achieves 0.11% duty cycle.
机译:建设性干扰(CI)是一种同步传输技术,用于多个发送方在无线传感器网络(WSN)中同时传输同一数据包。 CI可以实现快速可靠的网络泛洪,以减少MAC协议的调度开销,实现精确的时间同步,提高有损链路的链路质量并实现有效的数据收集。通过实现微秒级的时间同步,Glossy实现了毫秒级的基于CI的泛洪和99%的可靠性。但是,Glossy会产生大量不必要的数据转发,从而大大缩短了网络寿命。这是一个非常关键的问题,尤其是在能源有限的大型农林无线传感器网络(WSN-AF)中。在本文中,我们通过在WSN-AF中利用CI提出了一种基于能量自适应CI的泛洪协议(EACIF)。 EACIF提出了一种分布式主动节点选择算法(ANSA),以减少冗余传输,从而显着降低能耗和洪泛延迟。我们用真实的数据迹线和均匀分布的拓扑来估计EACIF的性能。仿真结果表明,EACIF实现了与光面相同的数据包接收率(PRR)(例如99%),同时降低了63.96%的能耗。 EACIF还减少了25%的泛洪延迟。当数据包间隔为30秒时,EACIF达到0.11%的占空比。

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