An Optical Flow-Based Solution to the Problem of Range Identification in Perspective Vision Systems

被引:4
|
作者
Keshavan, Jishnu [1 ]
Humbert, J. Sean [1 ]
机构
[1] Univ Maryland, Autonomous Vehicles Lab, College Pk, MD 20742 USA
关键词
Feature depth estimation; Perspective vision; Optical flow; Nonlinear observer; Lyapunov analysis; STRUCTURE-FROM-MOTION; STATE OBSERVER; PARAMETERS;
D O I
10.1007/s10846-016-0404-6
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
A classical problem in machine vision is the range identification of an object moving in three-dimensional space from the two-dimensional image sequence obtained with a monocular camera. This study presents a novel reduced-order optical flow-based nonlinear observer that renders the proposed scheme suitable for depth estimation applications in both well-structured and unstructured environments. In this study, a globally exponentially stable observer is synthesized, where optical flow estimates are derived from tracking feature trajectory on the image plane over successive camera frames, to yield asymptotic estimates of feature depth at a desired convergence rate. Furthermore, the observer is shown to be finite-gain stable is not an element of pa[1,a] in the presence of exogenous disturbance influencing camera motion, and is applicable to a wider class of perspective systems than those considered by alternative designs. The observer requires minor apriori system information for convergence, and the convergence condition arises in a natural manner with an apparently intuitive interpretation. Numerical and experimental studies are used to validate and demonstrate robust observer performance in the presence of significant measurement noise.
引用
收藏
页码:651 / 662
页数:12
相关论文
共 50 条
  • [1] An Optical Flow-Based Solution to the Problem of Range Identification in Perspective Vision Systems
    Jishnu Keshavan
    J. Sean Humbert
    Journal of Intelligent & Robotic Systems, 2017, 85 : 651 - 662
  • [2] A new solution to the problem of range identification in perspective vision systems
    Karagiannis, D
    Astolfi, A
    IEEE TRANSACTIONS ON AUTOMATIC CONTROL, 2005, 50 (12) : 2074 - 2077
  • [3] Range identification for perspective vision systems
    Dixon, WE
    Fang, Y
    Dawson, DM
    Flynn, TJ
    IEEE TRANSACTIONS ON AUTOMATIC CONTROL, 2003, 48 (12) : 2232 - 2238
  • [4] RANGE IDENTIFICATION FOR PERSPECTIVE VISION SYSTEMS: A POSITION-BASED APPROACH
    Nath, Nitendra
    Braganza, David
    Dawson, Darren M.
    Burg, Timothy
    INTERNATIONAL JOURNAL OF ROBOTICS & AUTOMATION, 2011, 26 (02): : 182 - 186
  • [5] An optical flow-based integrated navigation system inspired by insect vision
    Pan, Chao
    Deng, He
    Yin, Xiao Fang
    Liu, Jian Guo
    BIOLOGICAL CYBERNETICS, 2011, 105 (3-4) : 239 - 252
  • [6] An optical flow-based integrated navigation system inspired by insect vision
    Chao Pan
    He Deng
    Xiao Fang Yin
    Jian Guo Liu
    Biological Cybernetics, 2011, 105 : 239 - 252
  • [7] Optical Flow-based Monocular Vision/INS Integrated Navigation for Mobile Robot Indoors
    Chen, Xiyuan
    Gao, Jingpeng
    Xu, Yuan
    Li, Qinghua
    MECHANICAL, ELECTRONIC AND ENGINEERING TECHNOLOGIES (ICMEET 2014), 2014, 538 : 375 - 378
  • [8] Optical flow-based transport on image manifolds
    Nagaraj, S.
    Hegde, C.
    Sankaranarayanan, A. C.
    Baraniuk, R. G.
    APPLIED AND COMPUTATIONAL HARMONIC ANALYSIS, 2014, 36 (02) : 280 - 301
  • [9] Knowledge Distillation for Optical Flow-Based Video Superresolution
    Lee J.
    Park S.-H.
    Journal of Computing Science and Engineering, 2023, 17 (01) : 13 - 19
  • [10] Optical Flow-Based Vascular Respiratory Motion Compensation
    Yang, Keke
    Zhang, Zheng
    Li, Meng
    Cao, Tuoyu
    Ghaffari, Maani
    Song, Jingwei
    IEEE ROBOTICS AND AUTOMATION LETTERS, 2023, 8 (11) : 6987 - 6994