Optics and Precision Engineering, Volume. 27, Issue 8, 1854(2019)
Model reconstruction and pose optimization of non-cooperative rotating space target
[1] [1] WANG X Q, SEKERCIOGLU A, DRUMMOND T. Vision-based cooperative pose estimation for localization in multi-robot systems equipped with RGB-D cameras [J]. Robotics, 2014, 4(1): 1-22.
[2] [2] FASANO G, GRASSI M, ACCARDO D. A stereo-vision based system for autonomous navigation of an in-orbit servicing platform [C]. Proceedings of the AIAA Infotech@Aero-space 2009, Seattle, USA: 2009.
[3] [3] CHRISTIAN J A, ROBIBSON S B, DSOUZA C N, et al.. Cooperative relative navigation of spacecraft using flash light detection and ranging sensors [J]. Journal of Guidance Control & Dynamics, 2014, 37(2): 452-465.
[4] [4] DURRANT-WHYTE H, BAILEY T. Simultaneous localization and mapping: part I [J]. IEEE Robotics & Automation Magazine, 2006, 13(2): 99-110.
[5] [5] LICHTER M D, DUBOWSKY S. State, shape, and parameter estimation of space objects from range images[C]. Proceedings of the International Conference on Robotics and Automation, New Orleans, USA, 2004: 2974-2979.
[6] [6] SMITH R C. On the representation and estimation of spatial uncertainty [J]. The International Journal of Robotics Research, 1986, 5(4): 56-68.
[7] [7] AUGENSTEIN S, ROCK S M. Improved frame-to-frame pose tracking during vision-only SLAM/SFM with a tumbling target [C]. Proceedings of the International Conference on Robotics and Automation, Shanghai, China, 2011: 3131-3138.
[8] [8] SCHNITZER F, JANSCHEK K, WILLICH G. Experimental results for image-based geometrical reconstruction for spacecraft Rendezvous navigation with unknown and uncooperative target spacecraft [C]. Proceedings of 2012 IEEE/RSJ International Conference on Intelligent Robots and Systems (IROS 2012), Vilamoura, Portugal, 2012: 5040-5045.
[9] [9] TWEDDLE B E. Computer Vision-Based Localization and Mapping of an Unknown, Uncooperative and Spinning Target for Spacecraft Proximity Operations [D]. USA: Massachusetts Institute of Technology, 2013.
[10] [10] KAESS M. Incremental smoothing and mapping [J]. IEEE Transactions on Robotics, 2008, 24(6): 1365-1378.
[11] [11] DOR M, TSIOTRAS P. ORB-SLAM applied to spacecraft non-cooperative rendezvous [C]. Proceedings of the 2018 Space Flight Mechanics Meeting, Kissimmee, USA, 2018.
[12] [12] MUR-ARTAL R, MONTIEL J M M, TARDOS J D. ORB-SLAM: a versatile and accurate monocular SLAM system [J]. IEEE Transactions on Robotics, 2015, 31(5): 1147-1163.
[15] [15] HAO G T, DU X P, SONG J J.Relative pose estimation of space tumbling non-cooperative target based on vision-only SLAM [J]. Journal of Astronautics, 2015, 36(6): 706-714. (in Chinese)
[16] [16] GUI L, ZHENG SH Y, CAO SH Q, et al.. Research of pose and altitude measurement for non-cooperative spacecraft based on 3D point clouds [J]. Aerospace Shanghai, 2016, 33(6): 122-128. (in Chinese)
[17] [17] BESL P J, MCKAY N D. A method for registration of 3-D shapes [J]. IEEE Transactions on Pattern Analysis and Machine Intelligence, 1992, 14(2): 239-256.
[18] [18] DYN N, HORMANN K, KIM S, et al.. Optimizing 3D triangulations using discrete curvature analysis [J]. Mathematical methods for curves and surfaces, 2001, 28(5): 135-146.
[19] [19] RIZZINI D L. Place recognition of 3D landmarks based on geometric relations [C]. Proceedings of the International Conference on Intelligent Robots and Systems (IROS), Vancouver, Canada, 2017: 648-654.
[20] [20] KUEMMERLE R, GRISETTI G, STRASDAT H, et al.. G2o: a general framework for graph optimization [C]. Proceedings of the International Conference on Robotics and Automation, Shanghai, China, 2011: 3607-3613.
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YIN Fang, WU Yun. Model reconstruction and pose optimization of non-cooperative rotating space target[J]. Optics and Precision Engineering, 2019, 27(8): 1854
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Received: Feb. 16, 2019
Accepted: --
Published Online: Jan. 19, 2020
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