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Camera Placement in Smart Cities for Maximizing Weighted Coverage With Budget Limit

机译:将摄像机放置在智能城市中,以最大化预算覆盖的加权覆盖范围

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This paper addresses the camera placement problem for smart cities in 3-D space and proposes a heuristic algorithm that maximizes the weighted coverage rate while satisfying the budget constraint. We first discuss about the quantization of surveillance target and camera locations into discrete grid points and the setting of the weights of target grid points. We then present the visibility analysis with field of view in consideration of occlusions and different camera specifications. Based on these characteristics and constraints, we formulate the camera placement problem and propose a new heuristic algorithm called collaboration-based local search algorithm, which incorporates the local search into collaborative allocation. We evaluate the performance of the proposed algorithm in comparison with the greedy algorithm, binary genetic algorithm, and binary particle swarm optimization through simulation experiments with small and large problem sets. The simulation results show that the proposed algorithm outperforms the three existing algorithms in terms of the average weighted coverage rate and computation time.
机译:本文解决了3D空间中智慧城市的摄像机放置问题,并提出了一种启发式算法,可在满足预算约束的同时最大化加权覆盖率。我们首先讨论将监视目标和摄像机位置量化为离散网格点以及目标网格点权重的设置。然后,我们在考虑遮挡和不同相机规格的情况下,提供具有视野的可见性分析。基于这些特征和约束条件,我们提出了相机放置问题,并提出了一种新的启发式算法,称为基于协作的本地搜索算法,该算法将本地搜索合并到协作分配中。通过贪婪算法,二进制遗传算法和二进制粒子群优化算法,通过对大小问题集的仿真实验,我们对所提算法的性能进行了评估。仿真结果表明,该算法在平均加权覆盖率和计算时间上均优于现有的三种算法。

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