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Optimal Sensor Placement for Large Scale Systems Using Boosted Clustering

机译:使用提升聚类的大型系统的最佳传感器放置

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Applications such as smart cities, smart weather monitoring etc. involve installing a large number of sensors. Installing these sensors and maintaining them is a cumbersome exercise and quite often involves huge cost. As a solution, one can install lesser number of sensors and monitor the entire area by interpolating the missing values (locations which are not measured). The approximation error obtained depends on two things (i) number of sensors installed (ii) placement of these limited number of sensors. The proposed work focuses on the second aspect i.e. optimal placing of sensors assuming the number of sensors available to be placed are fixed. Traditional methods like [1, 2, 3] estimate the optimal locations by posing them as an optimization problem solved using mathematical or heuristic approach. However, for large-scale systems, which deal with thousands of sensors, solution strategies are inefficient owing to their computational complexity.
机译:智能城市,智能天气监测等的应用涉及安装大量传感器。安装这些传感器并保持它们是一个繁琐的运动,并且通常往往涉及巨大的成本。作为解决方案,可以通过内插缺失值(未测量的位置)来安装较少数量的传感器并监视整个区域。获得的近似误差取决于安装的两件事(i)安装的传感器数(ii)放置这些有限数量的传感器。所提出的工作重点是第二方面,即,假设可用于放置的传感器数量的传感器最佳放置。像[1,2,3]这样的传统方法通过将它们构成为使用数学或启发式方法解决的优化问题来估计最佳位置。然而,对于大型系统,符合数千个传感器,由于其计算复杂性,解决方案策略效率低效。

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