Locator: A Cloud-Fog-Enabled Framework for Facilitating Efficient Location based Services

Shreya Ghosh, Jaydeep Das, Soumyasri Ghosh
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引用次数: 8

Abstract

The key aspect of the intelligent transportation system (ITS) is efficient mobility analytics to understand the movement behaviours of citizens. However, any location-aware analytics is time and computation intensive. In this work, we propose a mobility and delay-aware cloud-fog enabled framework, named LOCATOR for efficient location-based service provisioning. LOCATOR helps to minimize the service-waiting time and service-provisioning time of location-based services such as food delivery, medical emergency by deploying an optimal matching algorithm in the MapReduce paradigm. The framework is implemented and evaluated on the Google Cloud Platform (GCP) using real-life mobility datasets. LOCATOR has shown significant improvements in execution time compared to the baseline methods.
定位器:一个支持云雾的框架,用于促进高效的基于位置的服务
智能交通系统(ITS)的关键方面是有效的移动分析,以了解公民的运动行为。然而,任何位置感知分析都是时间和计算密集型的。在这项工作中,我们提出了一个可移动性和延迟感知的云雾启用框架,名为LOCATOR,用于高效的基于位置的服务提供。LOCATOR通过在MapReduce范式中部署最优匹配算法,帮助最小化基于位置的服务(如送餐、医疗急救)的服务等待时间和服务提供时间。该框架在谷歌云平台(GCP)上使用真实的移动数据集进行实施和评估。与基准方法相比,LOCATOR在执行时间上有了显著的改进。
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