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Internet of Things Data Collection Using Unmanned Aerial Vehicles in Infrastructure Free Environments

机译:物联网数据收集在基础设施的自由环境中使用无人机飞行器

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With the immensity of distributed Internet of Things (IoT) devices and the exponential increase in data generated from a variety of IoT-driven smart-world applications, how to effectively provide data driven service supported by IoT has become a critical issue. While the state-of-the-art technologies have been developed and network infrastructures with high capabilities have been designed to deal with the data collection problem, there are still application scenarios, in which network infrastructure is not available or appropriate in large target areas (e.g., farmlands deployed with IoT sensors in operation, providing precise agriculture; emergency responder with IoT sensors, providing public safety service). To address the issue of efficiently collecting data from IoT devices deployed in large areas without pre-deployed network infrastructure, we formalize the problem space in a three-dimensional model that considers task, resource, and methodology. Based on the designed problem space, we propose a novel solution that deploys an unmanned aerial vehicle (UAV), as a critical next generation mobile network, to achieve intermittent IoT device connections and enable data collection based on delay tolerant network (DTN) protocol. The UAV flight path is determined using a Hilbert Curve-based path planning algorithm. Through a series of quantitative experiments, we validate the effectiveness of our approach in a network emulation environment, and confirm its advantages in comparison with several baseline approaches. The results of our research shows the capability of quality and cost control in IoT applications such as smart agriculture, public safety disaster recovery and rescue.
机译:随着分布式物联网的免疫(IOT)设备和来自各种IOT驱动的智能世界应用程序产生的数据的指数增加,如何有效地提供由IOT支持的数据驱动服务已成为一个关键问题。虽然已经开发了最先进的技术和具有高功能的网络基础架构,但仍有旨在处理数据收集问题,但仍有应用方案,其中网络基础架构在大型目标区域中不可用或适当(例如,在运行中使用物联网传感器部署的农田,提供精确的农业;紧急响应与IOT传感器,提供公共安全服务)。要解决在没有预先部署的网络基础架构的大区域部署的IOT设备上有效地收集数据的问题,我们将问题空间正式化,以考虑任务,资源和方法的三维模型。基于设计的问题空间,我们提出了一种新的解决方案,该解决方案将无人驾驶飞行器(UAV)部署为关键的下一代移动网络,以实现基于延迟容差网络(DTN)协议的间歇性IOT设备连接和使能数据收集。使用希尔伯特曲线的路径规划算法确定UAV飞行路径。通过一系列定量实验,我们验证了我们在网络仿真环境中的方法的有效性,并与几种基线方法相比,确认其优点。我们的研究结果表明了智能农业,公共安全灾难恢复和救援等IOT应用中质量和成本控制的能力。

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