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Fair Scheduling for Data Collection in Mobile Sensor Networks with Energy Harvesting

机译:具有能量收集功能的移动传感器网络中数据收集的公平调度

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摘要

We consider the problem of data collection from a network of energy harvesting sensors, applied to tracking mobile assets in rural environments. Our application constraints favor a fair and energy-aware solution, with heavily duty-cycled sensor nodes communicating with powered base stations. We study a novel scheduling optimization problem for energy harvesting mobile sensor network, that maximizes the amount of collected data under the constraints of radio link quality and energy harvesting efficiency, while ensuring a fair data reception. We show that the problem is NP-complete and propose a heuristic algorithm to approximate the optimal scheduling solution in polynomial time. Moreover, our algorithm is flexible in handling progressive energy harvesting events, such as with solar panels, or opportunistic and bursty events, such as with Wireless Power Transfer. We use empirical link quality data, solar energy, and WPT efficiency to evaluate the proposed algorithm in extensive simulations and compare its performance to state-of-the-art. We show that our algorithm achieves high data reception rates, under different fairness and node lifetime constraints.
机译:我们考虑了从能量收集传感器网络收集数据的问题,该网络用于跟踪农村环境中的移动资产。我们的应用程序约束倾向于一个公平且节能的解决方案,具有高占空比的传感器节点可与受电基站通信。我们研究了一种用于能量收集移动传感器网络的新型调度优化问题,该问题在无线电链路质量和能量收集效率的约束下最大化收集的数据量,同时确保公平的数据接收。我们证明问题是NP完全的,并提出了一种启发式算法来近似多项式时间内的最优调度解决方案。此外,我们的算法在处理渐进式能量收集事件(如太阳能电池板)或机会性和突发事件(如无线电源传输)时具有灵活性。我们使用经验链接质量数据,太阳能和WPT效率在广泛的仿真中评估所提出的算法,并将其性能与最新技术进行比较。我们表明,在不同的公平性和节点生命周期约束下,我们的算法可实现较高的数据接收率。

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