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首页> 外文期刊>Neural computing & applications >DFPhaseFL: a robust device-free passive fingerprinting wireless localization system using CSI phase information
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DFPhaseFL: a robust device-free passive fingerprinting wireless localization system using CSI phase information

机译:DFPHASEFL:使用CSI相信息的无稳健无源指纹无线定位系统

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摘要

Device-free passive wireless indoor localization is attracting great interest in recent years due to the widespread deployment of Wi-Fi devices and the numerous location-based services requirements. In this paper, we propose DFPhaseFL, the first device-free fingerprinting indoor localization system that purely uses CSI phase information. It utilizes the CSI phase information extracted from simply a single link to estimate the location of the target, neither requiring the target to wear any electronic equipment nor deploying a large number of access points and monitor devices. In DFPhaseFL, the raw CSI phases are extracted from the CSI measurements through the three antennas of the Intel WiFi Link 5300 wireless Network Interface Card (IWL 5300 NIC) firstly. Then, linear transformation and noise filtering are applied to acquire the calibrated CSI phases. Through experimental observations, we find that the calibrated CSI phase owns an unpredictable characteristic over time. Thus, it cannot be directly applied as a fingerprint. To this end, a transfer deep supervised neural network method combining deep neural network and transfer learning is proposed to obtain feature representations with both transferability and discriminability as fingerprints. Then, the DFPhaseFL system uses the SVM algorithm to obtain the estimation of the target location online. Experiment results demonstrate that the DFPhaseFL owns a better estimation precision compared with the other state of art, and maintain a stable localization accuracy for a long time without reacquiring the fingerprint database.
机译:由于Wi-Fi设备广泛部署和基于众多基于位置的服务要求,无设备无源无线室内本地化近年来吸引了极大的兴趣。在本文中,我们提出了DFPHASEFL,这是一个无设备的指纹室内定位系统,纯粹使用CSI相位信息。它利用从简单的单链路中提取的CSI相位信息来估计目标的位置,既不需要目标才能佩戴任何电子设备,也不是部署大量接入点和监视设备。在DFPHASEFL中,通过首先通过英特尔WIFI链路5300无线网络接口卡(IWL 5300 NIC)的三个天线从CSI测量中提取原始CSI阶段。然后,应用线性变换和噪声滤波来获取校准的CSI阶段。通过实验观察,我们发现校准的CSI阶段随着时间的推移拥有不可预测的特征。因此,它不能直接用作指纹。为此,提出了一种组合深神经网络和转移学习的转移深度监督神经网络方法,以获得具有传递性和可辨别性的特征表示作为指纹。然后,DFPHASEFL系统使用SVM算法在线获取目标位置的估计。实验结果表明,与其他现有技术相比,DFPhaSeFL拥有更好的估计精度,并在长期内保持稳定的本地化精度而无需重新采用指纹数据库。

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