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A novel method of Wi-Fi indoor localization based on channel state information

机译:基于信道状态信息的Wi-Fi室内定位的新方法

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Traditional Wi-Fi indoor localization system based on big data technique suffers from great degradation due to the instability and low space distinguish ability of received signal strength (RSS). Replacing RSS with channel state information (CSI) is proven to be an efficient method. However, not all CSI raw data contribute equally to the localization performance. The computational cost of fingerprint database is unacceptable as well. In this paper, we propose a novel method of Wi-Fi indoor localization based on CSI. A fast orthogonal search (FOS) algorithm is utilized to calculate the weights of CSI raw data collected from the wireless network interface card (NIC), reducing the database at the same time. Different weights of the features are then used as the input of a back-propagation (BP) neural network, conducting weighted training. We implement the system and experimentally evaluate its performance in the typical laboratory scenario. The performance of the proposed system is compared with several existing systems. Result shows that the proposed system has a 13% improvement in accuracy and a 14% improvement in execute time. The average distance error is 1.5702m.
机译:传统的基于大数据技术的Wi-Fi室内定位系统由于接收信号强度(RSS)的不稳定性和低空间分辨能力而遭受严重的破坏。事实证明,用信道状态信息(CSI)代替RSS是一种有效的方法。但是,并非所有CSI原始数据都对本地化性能做出同等贡献。指纹数据库的计算成本也是不能接受的。本文提出了一种基于CSI的Wi-Fi室内定位新方法。快速正交搜索(FOS)算法用于计算从无线网络接口卡(NIC)收集的CSI原始数据的权重,从而同时减少了数据库的数量。然后将不同权重的特征用作反向传播(BP)神经网络的输入,进行加权训练。我们在典型的实验室场景中实施该系统并通过实验评估其性能。将拟议系统的性能与几个现有系统进行比较。结果表明,所提出的系统的精度提高了13%,执行时间提高了14%。平均距离误差为1.5702m。

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