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An Improved Particle Filter Map Matching Algorithm for Personal Inertial Positioning
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作者 Xiaolong Zhang Tao Zhou +2 位作者 Jing Wang Tao Wang Hui Zhao 《Journal of Computer and Communications》 2023年第6期103-112,共10页
The current particle filtering map matching algorithm has problems such as low map utilization and poor accuracy of turnoff positioning, etc. This paper proposed an improved particle filtering-based map-matching algor... The current particle filtering map matching algorithm has problems such as low map utilization and poor accuracy of turnoff positioning, etc. This paper proposed an improved particle filtering-based map-matching algorithm for the inertial positioning of personnel. The historical moment position constraint and feasible region constraint of particles were introduced in this paper. A resampling method based on multi-stage backtracking of particles was proposed. Therefore, the effectiveness of newly generated particles could be guaranteed. The utilization rate of map information could be improved, thus enhancing the accuracy of personnel localization. The walking experiment results showed that, compared with the traditional PDR algorithm, the proposed method had higher localization accuracy and better repeatability of the localization trajectory for multi-turn paths. Under the total travel of 480 meters, the deviation of the starting end point was less than 2 meters, which was about 0.4% of the total travel. 展开更多
关键词 Personal Positioning Inertial Navigation Dead Reckoning Map Matching Particle Filtering
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