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Approximate Dynamic Programming for Communication-Constrained Sensor Network Management

机译:通信受限传感器网络管理的近似动态编程

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Resource management in distributed sensor networks is a challenging problem. This can be attributed to the fundamental tradeoff between the value of information contained in a distributed set of measurements versus the energy costs of acquiring measurements, fusing them into the conditional probability density function (pdf) and transmitting the updated conditional pdf. Communications is commonly the highest contributor among these costs, typically by orders of magnitude. Failure to consider this tradeoff can significantly reduce the operational lifetime of a sensor network. While a variety of methods have been proposed that treat a subset of these issues, the approaches are indirect and usually consider at most a single time step. In the context of object tracking with a distributed sensor network, we propose an approximate dynamic programming approach that integrates the value of information and the cost of transmitting data over a rolling time horizon. We formulate this tradeoff as a dynamic program and use an approximation based on a linearization of the sensor model about a nominal trajectory to simultaneously find a tractable solution to the leader node selection problem and the sensor subset selection problem. Simulation results demonstrate that the resulting algorithm can provide similar estimation performance to that of the common most informative sensor selection method for a fraction of the communication cost.
机译:分布式传感器网络中的资源管理是一个具有挑战性的问题。这可以归因于分布在一组测量中的信息的价值与获取测量,将其融合到条件概率密度函数(pdf)中并传输更新的条件pdf的能源成本之间的基本权衡。在这些成本中,通信通常是最大的贡献者,通常数量级较高。不考虑这种折衷会严重缩短传感器网络的使用寿命。虽然已经提出了各种方法来解决这些问题的子集,但是这些方法是间接的,通常最多只考虑一个时间步长。在使用分布式传感器网络进行对象跟踪的情况下,我们提出了一种近似动态编程方法,该方法将信息的价值和在滚动的时间范围内传输数据的成本相结合。我们将此折衷公式化为动态程序,并使用基于传感器模型关于标称轨迹的线性化的近似值,以同时找到前导节点选择问题和传感器子集选择问题的可解决方案。仿真结果表明,所得到的算法可以为通信成本的一小部分提供与常见的最有用的传感器选择方法相似的估计性能。

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