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Data Gathering Optimization by Dynamic Sensing and Routing in Rechargeable Sensor Networks

机译:可充电传感器网络中动态感应和路由的数据收集优化

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Data gathering in wireless sensor networks typically involves two steps: data sensing and data transmission, which dominate the energy consumption of each sensor. In Rechargeable Sensor Networks (RSNs), in order to optimize data gathering, energy should be carefully allocated to data sensing and data transmission due to time-varying renewable energy arrival and limited battery capacity. Moreover, the dynamic feature of network topology should be taken into account, since it can affect the optimal data transmission. In this paper, we strive to optimize data gathering by jointly considering data sensing and transmission. To this end, we first design a Balanced Energy Allocation Scheme (BEAS) for each sensor to manage its energy use, which is proven to meet four requirements raised by practical scenarios. Then we propose a Distributed Sensing Rate and Routing Control (DS2RC) algorithm to jointly optimize data sensing and transmission, while guaranteeing network fairness. In DS2RC, each sensor can adaptively adjust its transmit energy consumption during network operation according to the amount of available energy, and select the optimal sensing rate and routing, which can efficiently improve data gathering. We theoretically prove the optimality and the convergence of the proposed algorithms. Extensive simulations are performed to demonstrate the efficiency of BEAS and DS2RC by comparing with existing algorithms.
机译:无线传感器网络中收集的数据通常涉及两个步骤:数据感测和数据传输,其主导每个传感器的能量消耗。在可充电传感器网络(RSNS)中,为了优化数据收集,应仔细地将能量分配给数据感测和数据传输,因为时变可再生能量到达和电池容量有限。此外,应该考虑网络拓扑的动态特征,因为它可以影响最佳数据传输。在本文中,我们努力通过共同考虑数据感测和传输来优化数据收集。为此,我们首先为每个传感器设计一个平衡的能量分配方案(BEA),以管理其能源使用,这被证明满足实际情况提出的四种要求。然后,我们提出了一种分布式传感速率和路由控制(DS2RC)算法,共同优化数据感测和传输,同时保证网络公平性。在DS2RC中,每个传感器可以根据可用能量的量自适应地调整其在网络操作期间的发射能耗,并选择最佳感测率和路由,这可以有效地改善数据收集。我们理论上证明了所提出的算法的最优性和融合。通过与现有算法进行比较来执行广泛的模拟以展示BEAS和DS2RC的效率。

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