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Customized multi-period stochastic assignment problem for social engagement and opportunistic IoT

机译:针对社会参与和机会性物联网的定制的多周期随机分配问题

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摘要

An enormous number of devices are currently available to collect data. One of the main applications of these devices is in the urban environment, where they can collect data useful for improving the operations management and reducing economic, environmental and social costs. This is the main goal of smart cities. To gather these data from devices, companies can build expensive networks able of reaching every part of the city or they can use cheaper alternatives as opportunistic connections, i.e., use the devices of selected people (e.g., mobile users) as mobile hotspots in exchange for a reward. In this paper, we consider this second choice and, in particular, we solve the problem of minimizing the sum of the rewards while providing the connectivity to all sensors. We show that the stochastic approach must be considered since deterministic solutions produce considerable waste. Finally, to reduce the computational time we apply the loss of reduced costs-based variable fixing (LRCVF) heuristic and we compare, by means of computational tests, the performances of the heuristic and a commercial solver. The results prove the effectiveness of the LRCVF heuristic. (C) 2018 Elsevier Ltd. All rights reserved.
机译:当前有大量设备可用于收集数据。这些设备的主要应用之一是在城市环境中,在那里他们可以收集有助于改善运营管理并降低经济,环境和社会成本的数据。这是智慧城市的主要目标。为了从设备中收集这些数据,公司可以建立能够到达城市每个部分的昂贵网络,或者可以使用廉价的替代品作为机会连接,即使用选定人员(例如,移动用户)的设备作为移动热点来交换一份奖励。在本文中,我们考虑了第二种选择,尤其是解决了在提供与所有传感器的连接性的同时将奖励总和最小化的问题。我们表明,由于确定性解决方案会产生大量浪费,因此必须考虑采用随机方法。最后,为了减少计算时间,我们应用了基于降低成本的变量固定(LRCVF)启发式算法的损失,并通过计算测试比较了启发式算法和商用求解器的性能。结果证明了LRCVF启发式算法的有效性。 (C)2018 Elsevier Ltd.保留所有权利。

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