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Combining RSS-based trilateration methods with radio-tomographic imaging: Exploring the capabilities of long-range RFID systems

机译:将基于RSS的三边测量方法与放射断层成像相结合:探索远程RFID系统的功能

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Several approaches have been proposed for the localization of persons at their homes in assisted living applications. Most of these systems are beacon-based solutions which trilaterate with RSS signals captured by a user-attached device (the LPS approach); a technique which can be enhanced by information obtained by inertial sensor carried by the user. A completely different approach uses the concept of radio tomographic imaging (RTI) to infer the user's position without requiring him to carry any device (the Device Free Localization or DFL approach). This paper explores how both approaches (LPS and DFL) can be combined to provide a localization solution that integrates the advantages of both methods. The sensors employed in this study use long-range active RFID technology at 433 MHz carrier frequency. An important challenge is achieving enough position accuracy with a relatively low number of RFID readers in an apartment-size area. The large wavelength (0.6 m), low measurement rate (1 Hz) and low signal to noise ratio are other challenges that our localization system has to cope with. We analyse the RSS readings of the RFID equipment and extract measurement models useful for DFL- and LPS-based localization. We also combine both approaches (DFL + LPS) in order to achieve an accurate enough localization (positioning error below 1 meter for 90% of the cases). The fusion of these estimation techniques is implemented with a particle filter which combines measurements from two sources: the tag-to-reader RSS-based ranges and the RSS-link differences with respect to an empty room reference RTI-image.
机译:已经提出了几种方法来使人们在家中辅助生活中的应用本地化。这些系统中的大多数是基于信标的解决方案,可对用户连接的设备捕获的RSS信号进行三边测量(LPS方法);一种可以通过用户携带的惯性传感器获得的信息来增强的技术。完全不同的方法使用无线电层析成像(RTI)的概念来推断用户的位置,而无需携带任何设备(设备自由定位或DFL方法)。本文探讨了如何将两种方法(LPS和DFL)结合使用,以提供一种融合了两种方法的优点的本地化解决方案。本研究中使用的传感器在433 MHz载波频率上使用了远程有源RFID技术。一个重要的挑战是在公寓大小的区域中使用相对较少数量的RFID读取器来获得足够的位置精度。大波长(0.6 m),低测量速率(1 Hz)和低信噪比是我们的定位系统必须应对的其他挑战。我们分析了RFID设备的RSS读数,并提取了对基于DFL和LPS的定位有用的测量模型。我们还结合了两种方法(DFL + LPS)以实现足够准确的定位(对于90%的情况,定位误差在1米以下)。这些估计技术的融合是通过粒子滤波器实现的,该粒子滤波器结合了两个来源的测量结果:基于标签到读取器的RSS范围和相对于空房间参考RTI图像的RSS链接差异。

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