Building a Reliable and Cost-Effective RTK-GNSS Infrastructure for Precise Positioning of IoT Applications

Bhagawan Rokaha, B. P. Gautam, T. Kitani
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引用次数: 2

Abstract

A precise positioning solution is mandatory for many applications including intelligent transport systems (ITS), precision agriculture, space weather forecasting, disaster rescue and managing unmanned aerial vehicles (UAV). RTK-GNSS is a key technology in providing centimeter-level accuracy for those applications. However, reliable and cost-effective RTK-GNSS applications and infrastructure are still lacking. Thus, in this paper, we discuss how a reliable and cost-saving RTK-GNSS infrastructure can be designed, deployed and accomplished by using available technologies and tools. We developed a prototyping device equipped with RTK-GNSS receiver, cellular modem, sensors, and movable energy supply modules that include a solar panel as a self-sustainable power source. In our design, different sensors are used to monitor and control the physical status of the base station through Internet. We conducted two experiments in different weather and geographical conditions where our result shows that the consistency of the cm-level accuracy is around 91% in both areas. Similarly, the reliability of the system is maintained by the sensors' data that are visualized graphically in real-time through Internet. After analyzing the experimented results, and mechanism of the base station status update and control system, we conclude that the accuracy, feasibility, and reliability can be achieved even by using a low-cost RTK-GNSS receiver with sensors network. We believe that developing this infrastructure will support precise positioning applications and upgrade technological capabilities for generations.
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构建可靠、经济的RTK-GNSS基础设施,实现物联网应用的精确定位
精确定位解决方案是许多应用的必要条件,包括智能交通系统(ITS)、精准农业、空间天气预报、灾害救援和管理无人机(UAV)。RTK-GNSS是为这些应用提供厘米级精度的关键技术。然而,可靠且具有成本效益的RTK-GNSS应用和基础设施仍然缺乏。因此,在本文中,我们讨论了如何使用可用的技术和工具来设计、部署和完成可靠且节省成本的RTK-GNSS基础设施。我们开发了一个原型设备,配备了RTK-GNSS接收器、蜂窝调制解调器、传感器和可移动能源供应模块,其中包括一个太阳能电池板作为自我可持续的电源。在我们的设计中,使用不同的传感器通过互联网来监测和控制基站的物理状态。我们在不同的天气和地理条件下进行了两次实验,结果表明,在两个地区,cm级精度的一致性都在91%左右。同样,系统的可靠性是通过互联网实时可视化的传感器数据来维持的。通过对实验结果的分析,以及基站状态更新与控制系统的工作原理,得出即使采用低成本的RTK-GNSS接收机和传感器网络,也可以实现基站状态更新与控制系统的准确性、可行性和可靠性。我们相信,开发这种基础设施将支持精确定位应用,并提升几代人的技术能力。
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