• Photonics Research
  • Vol. 8, Issue 11, 1808 (2020)
Cheng Jiang1、†, Patrick Kilcullen1、†, Yingming Lai, Tsuneyuki Ozaki, and Jinyang Liang*
Author Affiliations
  • Centre Énergie Matériaux Télécommunications, Institut National de la Recherche Scientifique, 1650 boulevard Lionel-Boulet, Varennes, Québec J3X1S2, Canada
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    DOI: 10.1364/PRJ.399492 Cite this Article Set citation alerts
    Cheng Jiang, Patrick Kilcullen, Yingming Lai, Tsuneyuki Ozaki, Jinyang Liang. High-speed dual-view band-limited illumination profilometry using temporally interlaced acquisition[J]. Photonics Research, 2020, 8(11): 1808 Copy Citation Text show less
    References

    [1] X. Su, Q. Zhang. Dynamic 3-D shape measurement method: a review. Opt. Lasers Eng., 48, 191-204(2010).

    [2] P. Kilcullen, C. Jiang, T. Ozaki, J. Liang. Camera-free three-dimensional dual photography. Opt. Express, 28, 29377-29389(2020).

    [3] S. S. Gorthi, P. Rastogi. Fringe projection techniques: whither we are?. Opt. Lasers Eng., 48, 133-140(2010).

    [4] S. Van der Jeught, J. J. Dirckx. Real-time structured light profilometry: a review. Opt. Lasers Eng., 87, 18-31(2016).

    [5] S. Zhang. Absolute phase retrieval methods for digital fringe projection profilometry: a review. Opt. Lasers Eng., 107, 28-37(2018).

    [6] J. Liang. Punching holes in light: Recent progress in single-shot coded-aperture optical imaging. Rep. Prog. Phys.(2020).

    [7] I. Ishii, K. Yamamoto, K. Doi, T. Tsuji. High-speed 3D image acquisition using coded structured light projection. IEEE/RSJ International Conference on Intelligent Robots and Systems, 925-930(2007).

    [8] J. Geng. Structured-light 3D surface imaging: a tutorial. Adv. Opt. Photon., 3, 128-160(2011).

    [9] J. Liang, M. F. Becker, R. N. Kohn, D. J. Heinzen. Homogeneous one-dimensional optical lattice generation using a digital micromirror device-based high-precision beam shaper. J. Micro/Nanolith. MEMS MOEMS, 11, 023002(2012).

    [10] L. J. Hornbeck. Digital light processing for high-brightness high-resolution applications. Proc. SPIE, 3013, 27-41(1997).

    [11] J. Liang, S.-Y. Wu, R. N. Kohn, M. F. Becker, D. J. Heinzen. Grayscale laser image formation using a programmable binary mask. Opt. Eng., 51, 108201(2012).

    [12] S. Lei, S. Zhang. Flexible 3-D shape measurement using projector defocusing. Opt. Lett., 34, 3080-3082(2009).

    [13] B. Li, Y. Wang, J. Dai, W. Lohry, S. Zhang. Some recent advances on superfast 3D shape measurement with digital binary defocusing techniques. Opt. Lasers Eng., 54, 236-246(2014).

    [14] C. Jiang, P. Kilcullen, X. Liu, J. Gribben, A. Boate, T. Ozaki, J. Liang. Real-time high-speed three-dimensional surface imaging using band-limited illumination profilometry with a CoaXPress interface. Opt. Lett., 45, 964-967(2020).

    [15] Y. Wang, S. Zhang. Superfast multifrequency phase-shifting technique with optimal pulse width modulation. Opt. Express, 19, 5149-5155(2011).

    [16] C. Zuo, Q. Chen, G. Gu, S. Feng, F. Feng. High-speed three-dimensional profilometry for multiple objects with complex shapes. Opt. Express, 20, 19493-19510(2012).

    [17] D. Li, H. Zhao, H. Jiang. Fast phase-based stereo matching method for 3D shape measurement. International Symposium on Optomechatronic Technologies, 1-5(2010).

    [18] C. Bräuer-Burchardt, C. Munkelt, M. Heinze, P. Kühmstedt, G. Notni. Using geometric constraints to solve the point correspondence problem in fringe projection based 3D measuring systems. International Conference on Image Analysis and Processing, 265-274(2011).

    [19] Z. Li, K. Zhong, Y. F. Li, X. Zhou, Y. Shi. Multiview phase shifting: a full-resolution and high-speed 3D measurement framework for arbitrary shape dynamic objects. Opt. Lett., 38, 1389-1391(2013).

    [20] W. Yin, S. Feng, T. Tao, L. Huang, M. Trusiak, Q. Chen, C. Zuo. High-speed 3D shape measurement using the optimized composite fringe patterns and stereo-assisted structured light system. Opt. Express, 27, 2411-2431(2019).

    [21] B. Li, P. Ou, S. Zhang. High-speed 3D shape measurement with fiber interference. Proc. SPIE, 9203, 920310(2014).

    [22] N. L. Karpinsky, M. Hoke, V. Chen, S. Zhang. High-resolution, real-time three-dimensional shape measurement on graphics processing unit. Opt. Eng., 53, 024105(2014).

    [23] C. Jiang, T. Bell, S. Zhang. High dynamic range real-time 3D shape measurement. Opt. Express, 24, 7337-7346(2016).

    [24] J.-S. Hyun, S. Zhang. Superfast 3D absolute shape measurement using five binary patterns. Opt. Lasers Eng., 90, 217-224(2017).

    [25] M. Unser, A. Aldroubi, M. Eden. Fast B-spline transforms for continuous image representation and interpolation. IEEE Trans. Pattern Anal. Mach. Intell., 13, 277-285(1991).

    [26] X. Liu, J. Liu, C. Jiang, F. Vetrone, J. Liang. Single-shot compressed optical-streaking ultra-high-speed photography. Opt. Lett., 44, 1387-1390(2019).

    [27] C. Lei, Y. Wu, A. C. Sankaranarayanan, S.-M. Chang, B. Guo, N. Sasaki, H. Kobayashi, C.-W. Sun, Y. Ozeki, K. Goda. GHz optical time-stretch microscopy by compressive sensing. IEEE Photon. J., 9, 7500207(2017).

    [28] J. Liang, R. N. Kohn, M. F. Becker, D. J. Heinzen. 1.5% root-mean-square flat-intensity laser beam formed using a binary-amplitude spatial light modulator. Appl. Opt., 48, 1955-1962(2009).

    [29] S. Zhang, P. S. Huang. Novel method for structured light system calibration. Opt. Eng., 45, 083601(2006).

    [30] J.-Y. Bouguet. Camera calibration toolbox for MATLAB.

    [31] S. Zhang, D. Royer, S.-T. Yau. GPU-assisted high-resolution, real-time 3-D shape measurement. Opt. Express, 14, 9120-9129(2006).

    [32] R. Hartley, A. Zisserman. Multiple View Geometry in Computer Vision(2003).

    [33] OPTRONIS GMBH. User Manual CP70-1HS-M/C-1900, 4(2018).

    [34] W. Gao, Q. Kemao. Parallel computing in experimental mechanics and optical measurement: a review. Opt. Lasers Eng., 50, 608-617(2012).

    [35] C. Chang, J. Liang, D. Hei, M. F. Becker, K. Tang, Y. Feng, V. Yakimenko, C. Pellegrini, J. Wu. High-brightness X-ray free-electron laser with an optical undulator by pulse shaping. Opt. Express, 21, 32013-32018(2013).

    [36] C. Hoppe, M. Klopschitz, M. Rumpler, A. Wendel, S. Kluckner, H. Bischof, G. Reitmayr. Online feedback for structure-from-motion image acquisition. British Machine Vision Conference (BMVC), 1-12(2012).

    [37] J. Qian, M. Lei, D. Dan, B. Yao, X. Zhou, Y. Yang, S. Yan, J. Min, X. Yu. Full-color structured illumination optical sectioning microscopy. Sci. Rep., 5, 14513(2015).

    [38] K. Dorozynska, V. Kornienko, M. Aldén, E. Kristensson. A versatile, low-cost, snapshot multidimensional imaging approach based on structured light. Opt. Express, 28, 9572-9586(2020).

    [39] A. Ramos, F. Pelayo, M. Lamela, A. F. Canteli, C. Huerta, A. Acios. Evaluation of damping properties of structural glass panes under impact loading. COST Action TU0905 Mid-Term Conference on Structural Glass(2013).

    [40] C. Bedon, M. Fasan, C. Amadio. Vibration analysis and dynamic characterization of structural glass elements with different restraints based on operational modal analysis. Buildings, 9, 13(2019).

    [41] M. Haldimann, A. Luible, M. Overend. Structural Use of Glass, 10(2008).

    [42] Y. Li. Hand gesture recognition using Kinect. IEEE International Conference on Computer Science and Automation Engineering, 196-199(2012).

    [43] S. Huang, K. Shinya, N. Bergström, Y. Yamakawa, T. Yamazaki, M. Ishikawa. Dynamic compensation robot with a new high-speed vision system for flexible manufacturing. Int. J. Adv. Manuf. Technol., 95, 4523-4533(2018).

    [44] R. B. Randall. State of the art in monitoring rotating machinery-part 1. Sound Vibr., 38, 14-21(2004).

    [45] T. A. Van Walsum, A. Perna, C. M. Bishop, C. P. Murn, P. M. Collins, R. P. Wilson, L. G. Halsey. Exploring the relationship between flapping behaviour and accelerometer signal during ascending flight, and a new approach to calibration. Int. J. Avian Sci., 162, 13-26(2020).

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    Cheng Jiang, Patrick Kilcullen, Yingming Lai, Tsuneyuki Ozaki, Jinyang Liang. High-speed dual-view band-limited illumination profilometry using temporally interlaced acquisition[J]. Photonics Research, 2020, 8(11): 1808
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