Personal Homepage

Personal Information

MORE+

Main positions:任CJA,航空学报,全球定位系统,导航与控制编委
Other Post:担任中国指挥与控制学会青年工作委员会常务委员及多种评审专家。
Degree:Doctoral Degree in Engineering
School/Department:College of Automation Engineering

Qinghua Zeng

+

Gender:Male

Education Level:南京航空航天大学

Alma Mater:南京航空航天大学

Paper Publications

Smartphone heading correction based on gravity assisted and middle time simulated-zero velocity update method
Date of Publication:2018-10-07 Hits:

Affiliation of Author(s):自动化学院
Journal:Sensors
Abstract:Electronic appliances and ferromagnetic materials can be easily found in any building in urban environment. A steady magnetic environment and a pure value of geomagnetic field for calculating the heading of the smartphone in case of pedestrian walking indoors is hard to obtain. Therefore, an independent inertial heading correction algorithm without involving magnetic field but only making full use of the embedded Micro-Electro-Mechanical System (MEMS) Inertial measurement unit (IMU) device in the smartphone is presented in this paper. Aiming at the strict navigation requirements of pedestrian smartphone positioning, the algorithm focused in this paper consists of Gravity Assisted (GA) and Middle Time Simulated-Zero Velocity Update (MTS-ZUPT) methods. With the help of GA method, the different using-mode of the smartphone can be judged based on the data from the gravity sensor of smartphone. Since there is no zero-velocity status for handheld smartphone, the MTS-ZUPT algorithm is proposed based on the idea of Zero Velocity Update (ZUPT) algorithm. A Kalman Filtering algorithm is used to restrain the heading divergence at the middle moment of two steps. The walking experimental results indicate that the MTS-ZUPT algorithm can effectively restrain the heading error diffusion without the assistance of geomagnetic heading. When the MTS-ZUPT method was integrated with GA method, the smartphone navigation system can autonomously judge the using-mode and compensate the heading errors. The pedestrian positioning accuracy is significantly improved and the walking error is only 1.4% to 2.0% of the walking distance in using-mode experiments of the smartphone. © 2018 by the authors. Licensee MDPI, Basel, Switzerland.
ISSN No.:1424-8220
Translation or Not:no
Date of Publication:2018-10-07
Co-author:Qinghua Zeng,Zeng, Shijie,Meng, Qian,Chen, Ruizhi,Huang, Heze
Correspondence Author:曾庆化,Zeng, Shijie,ljy
Date of Publication:2018-10-07