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Energy management for event capture in rechargeable sensor network with limited capacitor size - Springer

机译:电容器尺寸有限的可充电传感器网络中事件捕获的能量管理-Springer

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Wireless rechargeable sensor nodes are usually equipped with capacitors which collect the the energy from RF signals and support the functioning of sensing, computation, and communication components. However, the highly limited capacitor size as well as the intrinsic energy cost during the node activation imposes critical design challenge for effective energy management. It is also desirable to realize effective coordination among nodes without too much intercommunication due to the highly limited energy capacity. In this paper, we consider the problem of how to schedule the activation of wireless rechargeable sensor nodes in order to maximize the event capture rate for random event process with the consideration of both highly limited capacitor size and activation energy cost. For the events following Poisson distribution, we theoretically prove that one optimal scheduling scheme for single node case is to activate the node only when the capacitor is fully charged and sleep only when the remaining energy is unable to support one activation. Then for the more general multi-node case, we propose a coordinated periodic scheduling scheme which reduces the activation overlap among different nodes without requiring the intercommunication. Extensive simulations are conducted to verify the effectiveness of our proposed methods.
机译:无线可充电传感器节点通常配备有电容器,该电容器收集来自RF信号的能量并支持传感,计算和通信组件的功能。然而,高度受限的电容器尺寸以及节点激活期间的固有能量成本对有效的能量管理提出了关键的设计挑战。由于能量容量的高度限制,还希望实现节点之间的有效协调而无需太多的互通。在本文中,我们考虑了如何安排无线可充电传感器节点的激活,以同时考虑到高度受限的电容器尺寸和激活能量成本来最大化随机事件过程的事件捕获率的问题。对于泊松分布之后的事件,我们从理论上证明,针对单节点情况的一种最佳调度方案是仅在电容器充满电时才激活节点,而仅在剩余能量无法支持一次激活时才休眠。然后,对于更一般的多节点情况,我们提出了一种协调的周期性调度方案,该方案可减少不同节点之间的激活重叠,而无需相互通信。进行了广泛的仿真,以验证我们提出的方法的有效性。

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