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An energy aware adaptive sampling algorithm for energy harvesting WSN with energy hungry sensors

机译:一种能量敏感的自适应采样算法,用于利用饥饿传感器采集能量的无线传感器网络

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摘要

Wireless sensor nodes have a limited power budget, though they are often expected to be functional in the field once deployed for extended periods of time. Therefore, minimization of energy consumption and energy harvesting technology in Wireless Sensor Networks (WSN) are key tools for maximizing network lifetime, and achieving self-sustainability. This paper proposes an energy aware Adaptive Sampling Algorithm (ASA) for WSN with power hungry sensors and harvesting capabilities, an energy management technique that can be implemented on any WSN platform with enough processing power to execute the proposed algorithm. An existing state-of-the-art ASA developed for wireless sensor networks with power hungry sensors is optimized and enhanced to adapt the sampling frequency according to the available energy of the node. The proposed algorithm is evaluated using two in-field testbeds that are supplied by two different energy harvesting sources (solar and wind). Simulation and comparison between the state-of-the-art ASA and the proposed energy aware ASA (EASA) in terms of energy durability are carried out using in-field measured harvested energy (using both wind and solar sources) and power hungry sensors (ultrasonic wind sensor and gas sensors). The simulation results demonstrate that using ASA in combination with an energy aware function on the nodes can drastically increase the lifetime of a WSN node and enable self-sustainability. In fact, the proposed EASA in conjunction with energy harvesting capability can lead towards perpetual WSN operation and significantly outperform the state-of-the-art ASA.
机译:无线传感器节点的功率预算有限,尽管通常预期一旦部署了较长时间后它们便可以在现场发挥作用。因此,最小化无线传感器网络(WSN)中的能耗和能量收集技术是最大化网络寿命并实现自我可持续性的关键工具。本文提出了一种具有耗电传感器和采集能力的WSN能量感知自适应采样算法(ASA),该能量管理技术可以在具有足够处理能力的任何WSN平台上实施以执行该算法。对现有的先进ASA进行了开发,该ASA是为具有电量消耗传感器的无线传感器网络开发的,经过优化和增强,可以根据节点的可用能量来适应采样频率。所提出的算法使用两个现场测试台进行评估,该测试台由两个不同的能量收集源(太阳能和风能)提供。使用现场测量的收集能源(使用风能和太阳能)和耗电传感器(在能源方面,对先进ASA和拟议的节能ASA(EASA)进行能源耐久性的仿真和比较)(超声波风传感器和气体传感器)。仿真结果表明,将ASA与节点上的能量感知功能结合使用,可以大大延长WSN节点的寿命并实现自我可持续性。实际上,所建议的EASA与能量收集功能结合可以使WSN永久运行,并大大优于最新的ASA。

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