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http://dx.doi.org/10.11003/JPNT.2016.5.1.001

Adaptive Wireless Localization Filter Containing NLOS Error Mitigation Function  

Cho, Seong Yun (Department of Applied Robotics, Kyungil University)
Publication Information
Journal of Positioning, Navigation, and Timing / v.5, no.1, 2016 , pp. 1-9 More about this Journal
Abstract
Range-based wireless localization system must measure accurate range between a mobile node (MN) and reference nodes. However, non-line-of-sight (NLOS) error caused by the spatial structures disturbs the localization system obtaining the accurate range measurements. Localization methods using the range measurements including NLOS error yield large localization error. But filter-based localization methods can provide comparatively accurate location solution. Motivated by the accuracy of the filter-based localization method, a filter residual-based NLOS error estimation method is presented in this paper. Range measurement-based residual contains NLOS error. By considering this factor with NLOS error properties, NLOS error is mitigated. Also a process noise covariance matrix tuning method is presented to reduce the time-delay estimation error caused by the single dynamic model-based filter when the speed or moving direction of a MN changes, that is the used dynamic model is not fit the current dynamic of a MN. The presented methods are evaluated by simulation allowing direct comparison between different localization methods. The simulation results show that the presented filter is more accurate than the iterative least squares- and extended Kalman filter-based localization methods.
Keywords
wireless localization; range measurement; NLOS error; estimation filter; residual; single dynamic model;
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1 AI-Jazzar, S., Caffery, J., & You, H. R. 2002, A scattering model based approach to NLOS mitigation in TOA location systems, IEEE Vehicular Technology Conference (VTC), Spring 2002, IEEE 55th, 2, 861-865. http://dx.doi.org/10.1109/VTC.2002.1002610   DOI
2 Banani, S. A., Najibi, M., & Vaughan, R. G. 2013, Rangebased localisation and tracking in non-line-of-sight wireless channels with Gaussian scatterer distribution model, IET Communications, 7, 2034-2043. http://dx.doi.org/10.1049/iet-com.2012.0265   DOI
3 Bar-Shalom, Y., Challa, S., & Blom, H. A. P. 2005, IMM estimator versus optimal estimator for hybrid systems, IEEE Trans. Aerospace and Electronic Systems, 41, 986-991. http://dx.doi.org/10.1109/TAES.2005.1541443   DOI
4 Brown, R. G. & Hwang, P. Y. C. 1997, Introduction to RandomSignals and Applied Kalman Filtering (NY: John Wiley & Sons)
5 Cheung, K. W., So, H. C., Ma, W. K., & Chan, Y. T. 2006, A constrained least squares approach to mobile positioning: algorithms and optimality, EURASIP Journal on Advances in Signal Processing, 1-23. http://dx.doi.org/10.1155/ASP/2006/20858   DOI
6 Cho, S. Y. & Kim, B. D. 2013, Linear closed-form solution for wireless localisation with ultra-wideband/chirp spread spectrum signals based on difference of squared range measurements, IET-Wireless Sensor Systems, 3, 255-265. http://dx.doi.org/10.1049/iet-wss.2012.0159   DOI
7 Cho, S. Y., Kim, J. Y., & Enkhtur, M. 2013, P2P ranging based cooperative localization method for a cluster of mobile nodes containing IR-UWB PHY, ETRI Journal, 35, 1084-1093. http://dx.doi.org/10.4218/etrij.13.0112.0823   DOI
8 Farrell, J. A. & Barth, M. 1999, The Global Positioning System & Inertial Navigation (NY: McGraw-Hill)
9 Huang, Y., Benesty, J., Elko, G. W., & Mersereati, R. M. 2001, Real-time passive source localization: A practical linear-correction least-squares approach, IEEE Trans. Speech and Audio Processing, 9, 943-956. http://dx.doi.org/10.1109/89.966097   DOI
10 Huerta, J. M. & Vidal, J. 2009, Joint particle filter and UKF position tracking in severe non-line-of-sight situations, IEEE Journal of Selected Topics in Signal Processing, 3, 874-888. http://dx.doi.org/10.1109/JSTSP.2009.2027804   DOI
11 Kolodziej, K. W. & Hjelm, J. 2006, Local positioning systems: LBS Applications and Services (NW: Taylor & Francis)
12 Lin, L. & Pingzhi, F. 2006, An improved NLOS error mitigation TOA reconstruction method, IET International Conference on Wireless, Mobile and Multimedia Networks, 6-9 Nov. 2006. http://dx.doi.org/10.1049/cp:20061548   DOI
13 Kong, S. H. 2009, TOA and AOD statistics for down link Gaussian scatterer distribution model, IEEE Trans. Wireless Communications, 8, 2609-2617. http://dx.doi.org/10.1109/TWC.2009.080508   DOI
14 Lee, H. K., Lee, J. G., & Jee, G. I. 2004, GPS multipath detection based on sequence of successive-time double-difference, IEEE Signal Processing Letters, 11, 316-319. http://dx.doi.org/10.1109/LSP.2003.821744   DOI
15 Li, X. R. & Jilkov, V. P. 2003, Survey of maneuvering target tracking. Part I: dynamic models, IEEE Trans. Aerospace and Electronic Systems, 39, 1333-1364. http://dx.doi.org/10.1109/TAES.2003.1261132   DOI
16 Najar, M., Huerta, J. M., Vidal, J., & Castro, J. A. 2004, Mobile location with bias tracking in non-line-of-sight, IEEE International Conference on Acoustics, Speech, and Signal Processing, 17-21 May 2004. http://dx.doi.org/10.1109/ICASSP.2004.1326705   DOI
17 Sturza, M. A. & Brown, A. K. 1990, Comparison of fixed and variable threshold RAIM algorithms, in Third International Technical Meeting of the Satellite Division of The Institute of Navigation (ION GPS 1990), Colorado Spring, CO, September 1990, pp.437-443.