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首页> 外文期刊>IEEE transactions on mobile computing >RTI Goes Wild: Radio Tomographic Imaging for Outdoor People Detection and Localization
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RTI Goes Wild: Radio Tomographic Imaging for Outdoor People Detection and Localization

机译:RTI疯狂:用于户外人员检测和定位的放射断层成像

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In recent years, Radio frequency (RF) sensor networks have been used to localize people indoor without requiring them to wear invasive electronic devices. These wireless mesh networks, formed by low-power radio transceivers, continuously measure the received signal strength (RSS) of the links. Radio Tomographic Imaging (RTI) is a technique that generates, starting from these RSS measurements, 2D images of the change in the electromagnetic field inside the area covered by the radio transceivers to spot the presence and movements of animates (e.g., people, large animals) or large metallic objects (e.g., cars). Here, we present a RTI system for localizing and tracking people outdoors. Differently than in indoor environments where the RSS does not change significantly with time unless people are found in the monitored area, the outdoor RSS signal is time-variant, e.g., due to rainfall or wind-driven foliage. We present a novel outdoor RTI method that, despite the nonstationary noise introduced in the RSS data by the environment, achieves high localization accuracy and dramatically reduces the energy consumption of the sensing units. Experimental results demonstrate that the system accurately detects and tracks a person in real-time in a large forested area under varying environmental conditions, significantly reducing false positives, localization error and energy consumption compared to state-of-the-art RTI methods.
机译:近年来,射频(RF)传感器网络已用于定位室内人员,而无需他们佩戴侵入性电子设备。由低功率无线电收发器组成的这些无线网状网络不断测量链路的接收信号强度(RSS)。无线电层析成像(RTI)是一种技术,从这些RSS测量开始,生成无线电收发器覆盖区域内电磁场变化的2D图像,以发现动画(例如人,大型动物)的存在和运动。 )或大型金属物体(例如汽车)。在这里,我们介绍了一个用于对室外人员进行本地化和跟踪的RTI系统。与室内环境不同,在室内环境中,除非有人在受监视区域中发现RSS,RSS不会随时间发生显着变化,但室外RSS信号是时变的,例如由于降雨或风力驱动的树叶。我们提出了一种新颖的户外RTI方法,尽管环境在RSS数据中引入了非平稳噪声,但仍可实现较高的定位精度并显着降低传感单元的能耗。实验结果表明,该系统可以在变化的环境条件下实时准确地检测和跟踪大森林地区的人员,与最新的RTI方法相比,可以大大减少误报,定位错误和能耗。

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