Next-Generation Inertial Navigation Computation Based on Functional Iteration

被引:2
|
作者
Wu, Y. [1 ]
机构
[1] Shanghai Jiao Tong Univ, Shanghai Key Lab Nav & Locat Based Serv, Shanghai, Peoples R China
关键词
Inertial navigation; Navigation computation; Non-commutativity error; Picard integration; Chebyshev polynomial; UNIFIED MATHEMATICAL FRAMEWORK; ALGORITHM; INTEGRATION;
D O I
10.23919/icins.2019.8769421
中图分类号
TN [电子技术、通信技术];
学科分类号
0809 ;
摘要
Inertial navigation computation is to acquire the attitude, velocity and position information of a moving body by integrating inertial measurements from gyroscopes and accelerometers. Over half a century has witnessed great efforts in coping with the motion non-commutativity errors to accurately compute the navigation information as far as possible, so as not to comprise the quality measurements of inertial sensors. Highly dynamic applications and the forthcoming cold-atom precision inertial navigation systems demand for even more accurate inertial navigation computation. The paper gives birth to an ultimate inertial navigation algorithm to fulfill that demand, named the iNavFIter, which is based on a brand new framework of functional iterative integration and Chebyshev polynomials. Remarkably, the proposed iNavFIter reduces the non-commutativity errors to almost machine precision, namely, the coning/sculling/scrolling errors that have perplexed the navigation community for long. Numerical results are provided to demonstrate its accuracy superiority over the-state-of-the-art inertial navigation algorithms at affordable computation cost.
引用
收藏
页数:12
相关论文
共 50 条
  • [21] Next-generation metrology facilitates next-generation displays
    Notermans P.
    Cohen N.
    Information Display, 2016, 32 (06) : 24 - 28
  • [22] Next-Generation Sequencing: Next-Generation Quality in Pediatrics
    Wortmann, Saskia B.
    Spenger, Johannes
    Preisel, Martin
    Koch, Johannes
    Rauscher, Christian
    Bader, Ingrid
    Mayr, Johannes A.
    Sperl, Wolfgang
    PADIATRIE UND PADOLOGIE, 2018, 53 (06): : 278 - 283
  • [23] Next-Generation Sequencing Demands Next-Generation Phenotyping
    Hennekam, Raoul C. M.
    Biesecker, Leslie G.
    HUMAN MUTATION, 2012, 33 (05) : 884 - 886
  • [24] Next-generation sequencing for next-generation breeding, and more
    Tsai, Chung-Jui
    NEW PHYTOLOGIST, 2013, 198 (03) : 635 - 637
  • [25] Next-generation sequencing of the next generation
    Darren J. Burgess
    Nature Reviews Genetics, 2011, 12 : 78 - 79
  • [26] THE NEXT-GENERATION
    GREENGARD, S
    PERSONNEL JOURNAL, 1994, 73 (03) : 40 - &
  • [27] NAVIGATION COMPUTATION IN TERRESTRIAL STRAPDOWN INERTIAL NAVIGATION SYSTEMS
    BARITZHACK, IY
    IEEE TRANSACTIONS ON AEROSPACE AND ELECTRONIC SYSTEMS, 1977, 13 (06) : 679 - 689
  • [28] Functional characterization of plant small RNAs based on next-generation sequencing data
    Chen, Ming
    Meng, Yijun
    Gu, Haibin
    Chen, Dijun
    COMPUTATIONAL BIOLOGY AND CHEMISTRY, 2010, 34 (5-6) : 308 - 312
  • [29] Next-generation functional nanotextiles-Prospects and challenges
    Ali, Tooba
    Najam-ul-Haq, Muhammad
    Mohyuddin, Abrar
    Musharraf, Syed Ghulam
    Hussain, Dilshad
    SUSTAINABLE MATERIALS AND TECHNOLOGIES, 2023, 36
  • [30] Precision medicine for cancer with next-generation functional diagnostics
    Friedman, Adam A.
    Letai, Anthony
    Fisher, David E.
    Flaherty, Keith T.
    NATURE REVIEWS CANCER, 2015, 15 (12) : 747 - 756