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基于扩展卡尔曼滤波-高斯过程回归的基于调整余弦相似度的基于子集的室内定位指纹更新

EKF-GPR-Based Fingerprint Renovation for Subset-Based Indoor Localization with Adjusted Cosine Similarity.

作者信息

Yang Junhua, Li Yong, Cheng Wei, Liu Yang, Liu Chenxi

机构信息

School of Electronic and Information, Northwestern Polytechnical University, Xi'an 710072, China.

出版信息

Sensors (Basel). 2018 Jan 22;18(1):318. doi: 10.3390/s18010318.

Abstract

Received Signal Strength Indicator (RSSI) localization using fingerprint has become a prevailing approach for indoor localization. However, the fingerprint-collecting work is repetitive and time-consuming. After the original fingerprint radio map is built, it is laborious to upgrade the radio map. In this paper, we describe a Fingerprint Renovation System (FRS) based on crowdsourcing, which avoids the use of manual labour to obtain the up-to-date fingerprint status. Extended Kalman Filter (EKF) and Gaussian Process Regression (GPR) in FRS are combined to calculate the current state based on the original fingerprinting radio map. In this system, a method of subset acquisition also makes an immediate impression to reduce the huge computation caused by too many reference points (RPs). Meanwhile, adjusted cosine similarity (ACS) is employed in the online phase to solve the issue of outliers produced by cosine similarity. Both experiments and analytical simulation in a real Wireless Fidelity (Wi-Fi) environment indicate the usefulness of our system to significant performance improvements. The results show that FRS improves the accuracy by 19.6% in the surveyed area compared to the radio map un-renovated. Moreover, the proposed subset algorithm can bring less computation.

摘要

基于指纹的接收信号强度指示(RSSI)定位已成为室内定位的一种流行方法。然而,指纹采集工作既重复又耗时。在构建原始指纹无线电地图后,更新无线电地图很费力。在本文中,我们描述了一种基于众包的指纹更新系统(FRS),该系统避免了使用人工来获取最新的指纹状态。FRS中的扩展卡尔曼滤波器(EKF)和高斯过程回归(GPR)相结合,基于原始指纹无线电地图计算当前状态。在该系统中,一种子集获取方法也给人留下了深刻印象,它减少了由过多参考点(RP)导致的巨大计算量。同时,在在线阶段采用调整后的余弦相似度(ACS)来解决余弦相似度产生的异常值问题。在真实的无线保真(Wi-Fi)环境中的实验和分析模拟都表明了我们的系统对显著提高性能的有效性。结果表明,与未更新的无线电地图相比,FRS在调查区域的定位精度提高了19.6%。此外,所提出的子集算法可以减少计算量。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/16f3/5795362/4b04bf442c81/sensors-18-00318-g001.jpg

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