Precision positioning of a stationary transporter using a fault detection and isolation method

被引:1
|
作者
An J.-W. [1 ]
Kim Y.-K. [1 ]
Lee J.-K. [2 ]
Lee J. [2 ]
机构
[1] Department of Electric and Electronic and Computer Engineering, Pusan National University
[2] Department of the Control and Instrumentation Engineering, Korea National University of Transportation
关键词
FDI; GPS; Precision positioning; Satellite signal; Transporter;
D O I
10.5302/J.ICROS.2016.16.0112
中图分类号
V474 [人造卫星];
学科分类号
摘要
This paper proposes a new global positioning system (GPS) receiver algorithm to improve the positioning accuracy of a transporter using fault detection and isolation techniques from satellite signals. To improve the positioning accuracy, several factors including a feasible number of satellite signals, SNR, NAV Measurement Quality Indicator (mesQI), and Doppler, among others, have been utilized in the proposed algorithm. To increase the number of feasible satellite signals, an erroneous satellite signal has been replaced by the previous one. In conventional approaches, received GPS signals are analyzed and directly determined to be contaminated or not. The only clean signals are utilized for identifying the current location. This fault detection and isolation (FDI) feasibility test is popular for commercial GPS receivers. In the urban environment, especially near a building, the feasible number of satellite signals becomes insufficient to position the transporter. To overcome this problem, satellite signals are efficiently selected and recovered. Additionally, using the proposed GPS receiver algorithm, a feasible number of satellite signals can be increased, thereby improving the positional accuracy. Real world experiments using a transporter that carries blocks in a shipyard have demonstrated the superiority of the proposed algorithm compared to conventional approaches. © ICROS 2016.
引用
收藏
页码:859 / 868
页数:9
相关论文
共 50 条
  • [41] Outlier detection by using fault detection and isolation techniques in geodetic networks
    Durdag, U. M.
    Hekimoglu, S.
    Erdogan, B.
    SURVEY REVIEW, 2016, 48 (351) : 400 - 408
  • [42] Current sensor fault detection and isolation method for PMSM drives, using average normalised currents
    El Khil, S. Khojet
    Jlassi, I.
    Estima, J. O.
    Mrabet-Bellaaj, N.
    Marques Cardoso, A. J.
    ELECTRONICS LETTERS, 2016, 52 (17) : 1434 - 1435
  • [43] Fault detection and isolation for dynamic non-stationary processes with stationary subspace-based canonical variate analysis
    Ji, Hongquan
    Sheng, Nan
    Liu, Huabo
    Huang, Keke
    CHEMICAL ENGINEERING SCIENCE, 2024, 295
  • [44] High-precision positioning using a self-sensing piezoelectric actuator control with a differential detection method
    Ikeda, Hideyuki
    Morita, Takeshi
    SENSORS AND ACTUATORS A-PHYSICAL, 2011, 170 (1-2) : 147 - 155
  • [45] Industrial Application of Fault Detection and Fault Isolation Using Artificial Neural Networks
    Ghobashy, Youssef A.
    Geliel, M. Abdel
    El Sengaby, M.
    2017 INTL CONF ON ADVANCED CONTROL CIRCUITS SYSTEMS (ACCS) SYSTEMS & 2017 INTL CONF ON NEW PARADIGMS IN ELECTRONICS & INFORMATION TECHNOLOGY (PEIT), 2017, : 48 - 59
  • [46] Study of precision ECM in stationary electrolyte using stamp flushing method
    Nakamura, Miyuki
    Kunieda, Masanori
    CIRP ANNALS-MANUFACTURING TECHNOLOGY, 2019, 68 (01) : 173 - 176
  • [47] A HMM-Based Fault Detection Method for Piecewise Stationary Industrial Processes
    Windmann, Stefan
    Jungbluth, Florian
    Niggemann, Oliver
    PROCEEDINGS OF 2015 IEEE 20TH CONFERENCE ON EMERGING TECHNOLOGIES & FACTORY AUTOMATION (ETFA), 2015,
  • [48] Fault detection and fault isolation in the ground station
    Elmore, DC
    Hurd, TR
    MILCOM 97 PROCEEDINGS, VOLS 1-3, 1997, : 1448 - 1452
  • [49] Method of Freeway Incident Detection Using wireless Positioning
    Li Chuan-zhi
    Hu Ru-fu
    Ye Hong-wu
    2008 IEEE INTERNATIONAL CONFERENCE ON AUTOMATION AND LOGISTICS, VOLS 1-6, 2008, : 2801 - +
  • [50] Detection and Isolation of Incipiently Developing Fault Using Wasserstein Distance
    Lu, Cheng
    Zeng, Jiusun
    Luo, Shihua
    Cai, Jinhui
    PROCESSES, 2022, 10 (06)