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Simulated annealing based approach for near-optimal sensor selection in Gaussian Processes

机译:基于模拟退火的高斯过程中接近最优传感器选择方法

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This paper addresses the sensor selection problem associated with monitoring spatial phenomena, where a subset of k sensor measurements from among a set of n potential sensor measurements is to be chosen such that the root mean square prediction error is minimised. It is proposed that the spatial phenomena to be monitored is modelled using a Gaussian Process and a simulated annealing based approximately heuristic algorithm is used to solve the resulting minimisation problem. The algorithm is shown to be computationally efficient and is illustrated using both indoor and outdoor environment monitoring scenarios. It is shown that, although the proposed algorithm is not guaranteed to find the optimum, it always provides accurate solutions for broad range real-world and computer generated datasets.
机译:本文解决了与监视空间现象相关的传感器选择问题,其中将从一组n个潜在传感器测量值中选择k个传感器测量值的子集,以使均方根预测误差最小。建议使用高斯过程对要监视的空间现象进行建模,并使用基于模拟退火的近似启发式算法来解决由此产生的最小化问题。该算法显示出计算效率,并使用室内和室外环境监控方案进行了说明。结果表明,尽管不能保证所提出的算法能找到最佳算法,但它始终为广泛的现实世界和计算机生成的数据集提供准确的解决方案。

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