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A Framework for Battery-Aware Sensor Management

机译:电池感知传感器管理框架

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A distributed sensor network (DSN) designed to cover a given region R, is said to be alive if there is at least one subset of sensors that can collectively cover (sense) the region R. When no such subset exists, the network is said to be dead. A key challenge in the design of a DSN is to maximize the operational life of the network. Since sensors are typically powered by batteries, this requires maximizing the battery lifetime. One way to achieve this is to determinethe optimal schedule for transitioning sets of sensors between active and inactive states while satisfying user specified performance constraints. This requires identification of feasible subsets (covers) of sensors and a scheme for switching between such subsets. We present an algorithmic solution to compute all the sensor covers in an implicit manner by formulating the problem as unate covering problem (UCP). The representation of all possible sensor sets is extremely efficient and can accommodate very large number of sensor covers.The representation and formulation makes it possible to consider the residual battery charge when switching between covers. We develop algorithms for switching between sensor covers aimed at maximizing the lifetime of the network. The algorithms take into account the transmission/reception costs of sensors, a user specified quality constraint and also utilize a novel battery model that accounts for the rate-dependent capacity effect and charge recoveryduring idle periods. Our simulation results show that lifetime improvement can be achieved by exploiting the charge recovery process. The work 1 presented here constitutes a framework for battery aware sensor management in which various types of constraints can be incorporated and a range of other communication protocols can be examined.
机译:如果存在至少一个传感器子集可以共同覆盖(感知)区域R,则被设计为覆盖给定区域R的分布式传感器网络(DSN)被称为是活动的。当不存在这样的子集时,则称为网络死了DSN设计中的关键挑战是最大化网络的使用寿命。由于传感器通常由电池供电,因此需要最大限度地延长电池寿命。实现此目的的一种方法是,在满足用户指定的性能约束的同时,确定在活动状态和非活动状态之间转换传感器组的最佳时间表。这需要识别传感器的可行子集(覆盖)以及用于在这些子集之间切换的方案。我们提出了一种算法解决方案,通过将问题表述为统一覆盖问题(UCP)以隐式方式计算所有传感器覆盖率。所有可能的传感器组的表示形式都非常高效,并且可以容纳非常多的传感器盖。这些表示形式和公式使得可以在切换两个盖之间时考虑电池的剩余电量。我们开发了用于在传感器盖之间进行切换的算法,旨在最大程度地延长网络的使用寿命。该算法考虑了传感器的传输/接收成本,用户指定的质量约束,并且还利用了一种新颖的电池模型,该模型考虑了速率相关的容量效应和空闲期间的电荷回收。我们的仿真结果表明,可以通过利用电荷恢复过程来提高使用寿命。此处介绍的工作1构成了电池感知传感器管理的框架,其中可以合并各种类型的约束,并且可以检查一系列其他通信协议。

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