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On A Novel Adaptive UAV-Mounted Cloudlet-Aided Recommendation System for LBSNs

机译:关于LBSN的新型自适应UAV安装的Cloudle-Aided推荐系统

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摘要

Location Based Social Networks (LBSNs) have recently emerged as a hot research area. However, the high mobility of LBSN users and the need to quickly provide access points in their interest zones present a unique research challenge. In order to address this challenge, in this paper, we consider the Unmanned Aerial Vehicles (UAVs) to be a viable candidate to promptly form a wireless, meshed offloading backbone to support the LBSN data sensing and relevant data computations in the LBSN cloud. In the considered network, UAV-mounted cloudlets are assumed to carry out adaptive recommendation in a distributed manner so as to reduce computing and traffic load. Furthermore, the computational complexity and communication overhead of our proposed adaptive recommendation are analyzed. The effectiveness of the proposed recommendation system in the considered LBSN is evaluated through computer-based simulations. Simulation results demonstrate that our proposal achieves much improved performance compared to conventional methods in terms of accuracy, throughput, and delay.
机译:基于位置的社交网络(LBSNS)最近被出现为热门研究区域。然而,LBSN用户的高流动性和需要在其兴趣区中快速提供接入点的需要具有独特的研究挑战。为了解决这一挑战,在本文中,我们认为无人驾驶飞行器(无人机)是一个可行的候选者,以便及时形成无线网状卸载骨干,以支持LBSN云中的LBSN数据感测和相关数据计算。在考虑的网络中,假设UAV安装的Cloudlet以分布式方式执行自适应推荐,以减少计算和流量负载。此外,分析了我们提出的自适应推荐的计算复杂性和通信开销。通过基于计算机的模拟评估所拟议的LBSN中拟议推荐系统的有效性。仿真结果表明,与准确性,吞吐量和延迟的传统方法相比,我们的提案实现了大量改进的性能。

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