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Cascading artificial neural networks optimized by genetic algorithms and integrated with global navigation satellite system to offer accurate ubiquitous positioning in urban environment

机译:通过遗传算法优化并与全球导航卫星系统集成的级联人工神经网络,可在城市环境中提供准确的普遍定位

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摘要

Location-based services (LBSs) have long been identified as an important component of emerging mobile services. While outdoor positioning has become strongly established, systems dealing with indoor positioning in urban environment are still under development. The upcoming LBSs require positioning systems (PSs) that are available ubiquitously, which requires the integration of the PS available in an outdoor environment with the PS available in indoor environment. Global navigation satellite systems (GNSSs) such as GPS, GLONASS, Galileo, and QZSS are some of the prominent systems that provide outdoor positioning. Indoor positioning systems (IPSs), however, are undergoing rapid development, and these systems can be supplied using short-range wireless technologies such as Wi-Fi, Bluetooth, RFID, and Infrared. Among these technologies, intense research is being conducted into Wi-Fi-based positioning systems due to their ubiquitous presence. This paper presents a model and results for a ubiquitous positioning system (UPS) that integrates a novel WLAN-based IPS and GNSS. The IPS is developed using cascading artificial neural networks, which are further optimized using genetic algorithms. The systems were thoroughly investigated on an actual Wi-Fi network at Asian Institute of Technology, Thailand. The IPS demonstrated a mean accuracy of 2.10 m and the UPS demonstrated a mean accuracy of 3.26 m, with 89% of the distance error within the range of 0-3.5 m.
机译:长期以来,基于位置的服务(LBS)被确定为新兴移动服务的重要组成部分。尽管室外定位已得到牢固确立,但有关城市环境中室内定位的系统仍在开发中。即将到来的LBS需要无处不在的定位系统(PS),这需要将室外环境中可用的PS与室内环境中可用的PS集成在一起。 GPS,GLONASS,Galileo和QZSS等全球导航卫星系统(GNSS)是提供室外定位的一些著名系统。然而,室内定位系统(IPSs)正在快速发展,并且可以使用诸如Wi-Fi,蓝牙,RFID和红外等短距离无线技术来提供这些系统。在这些技术中,由于存在无处不在,因此正在对基于Wi-Fi的定位系统进行深入研究。本文介绍了一种通用定位系统(UPS)的模型和结果,该系统集成了新颖的基于WLAN的IPS和GNSS。 IPS是使用级联的人工神经网络开发的,并使用遗传算法对其进行了进一步优化。在泰国亚洲技术学院的实际Wi-Fi网络上对系统进行了彻底调查。 IPS的平均精度为2.10 m,UPS的平均精度为3.26 m,距离误差的89%在0-3.5 m范围内。

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