Abstract
One of the main challenges in using GPS is reducing the positioning accuracy in high-speed conditions. In this contribution, by considering the effect of spatial correlation between observations in estimating the covariances, we propose a model for determining the variance–covariance matrix (VCM) that improves the positioning accuracy without increasing the computational load. In addition, we compare the performance of the extended Kalman filter (EKF) and unscented Kalman filter (UKF) combined with different dynamic models, along with the proposed VCM in GPS positioning at high speeds. To review and test the methods, we used six motion scenarios with different speeds from medium to high and examined the positioning accuracy of the methods and some of their statistical characteristics. The simulation results demonstrate that the EKF algorithm based on the Gauss–Markov model, along with the proposed VCM (based on the sinusoidal function and considering spatial correlations), performs better and provides at least 30% improvement in the positioning, compared to the other methods.
Subject
Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry
Reference24 articles.
1. Fuzzy Adaptive Cubature Kalman Filter for Integrated Navigation Systems
2. Kalman Filtering: Theory and Practice with MATLAB;Grewal,2014
3. An Improved Unscented Kalman Filter Applied into GPS Positioning System;Liu;ICIC Express Lett. Part B Appl.,2015
4. Least‐squares support vector machine‐based Kalman filtering for GNSS navigation with dynamic model real‐time correction
5. A Comparison of Several Maneuvering Target Tracking Models;McIntyre;Signal Process. Sens. Fusion Target Recognit.,1998
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