• Chinese Optics Letters
  • Vol. 20, Issue 11, 112601 (2022)
Shichao Yang1、2, Hanlin Huang1、2, Gaoxu Wu1、2, Yanxue Wu1、2, Tian Yang1、2, and Fei Liu1、2、*
Author Affiliations
  • 1State Key Laboratory of Mechanical Transmission, Chongqing University, Chongqing 400044, China
  • 2College of Mechanical Engineering, Chongqing University, Chongqing 400044, China
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    DOI: 10.3788/COL202220.112601 Cite this Article Set citation alerts
    Shichao Yang, Hanlin Huang, Gaoxu Wu, Yanxue Wu, Tian Yang, Fei Liu. High-speed three-dimensional shape measurement with inner shifting-phase fringe projection profilometry[J]. Chinese Optics Letters, 2022, 20(11): 112601 Copy Citation Text show less
    References

    [1] Y. An, J. S. Hyun, S. Zhang. Pixel-wise absolute phase unwrapping using geometric constraints of structured light system. Opt. Express, 24, 18445(2016).

    [2] S. Xing, H. Guo. Correction of projector nonlinearity in multi-frequency phase-shifting fringe projection profilometry. Opt. Express, 26, 16277(2018).

    [3] K.-C. C. Chien, H.-Y. Tu, C.-H. Hsieh, C.-J. Cheng, C.-Y. Chang. Regional fringe analysis for improving depth measurement in phase-shifting fringe projection profilometry. Meas. Sci. Technol., 29, 015007(2018).

    [4] C. Zuo, S. Feng, L. Huang, T. Tao, W. Yin, Q. Chen. Phase shifting algorithms for fringe projection profilometry: a review. Opt. Lasers Eng., 109, 23(2018).

    [5] S. Yu, J. Zhang, X. Yu, X. Sun, H. Wu, X. Liu. 3D measurement using combined Gray code and dual-frequency phase-shifting approach. Opt. Commun., 413, 283(2018).

    [6] M. Servin, M. Padilla, G. Garnica. Super-sensitive two-wavelength fringe projection profilometry with 2-sensitivities temporal unwrapping. Opt. Lasers Eng., 106, 68(2018).

    [7] Y. Liu, Q. Zhang, H. Zhang, Z. Wu, W. Chen. Improve temporal Fourier transform profilometry for complex dynamic three-dimensional shape measurement. Sensors, 20, 1808(2020).

    [8] X. Liu, J. Kofman. Real-time 3D surface-shape measurement using background-modulated modified Fourier transform profilometry with geometry-constraint. Opt. Lasers Eng., 115, 217(2019).

    [9] H. Zhang, Q. Zhang, Y. Li, Y. Liu. High speed 3D shape measurement with temporal Fourier transform profilometry. Appl. Sci., 9, 4123(2019).

    [10] D. Zheng, Q. Kemao, J. Han, J. Wang, H. Yu, L. Bai. High-speed phase-shifting profilometry under fluorescent light. Opt Lasers Eng., 128, 106033(2020).

    [11] J. Zhang, Y. Zhang, B. Chen, B. Dai. Full-field phase error analysis and compensation for nonsinusoidal waveforms in phase shifting profilometry with projector defocusing. Opt. Commun., 430, 467(2019).

    [12] J. S. Hyun, S. Zhang. Enhanced two-frequency phase-shifting method. Appl. Opt., 55, 4395(2016).

    [13] Y. Xu, S. Jia, Q. Bao, H. Chen, J. Yang. Recovery of absolute height from wrapped phase maps for fringe projection profilometry. Opt. Express, 22, 16819(2014).

    [14] Q. Zhang, Y. Han, Y. Wu. Comparison and combination of three spatial phase unwrapping algorithms. Opt. Rev., 26, 380(2019).

    [15] G. Dardikman, G. Singh, N. T. Shaked. Four dimensional phase unwrapping of dynamic objects in digital holography. Opt. Express, 26, 3772(2018).

    [16] S. Lian, H. Kudo. Improved algorithm for phase unwrapping with continuous submodular minimization. 3rd International Conference on Vision, Image and Signal Processing(2019).

    [17] C. Zuo, L. Huang, M. Zhang, Q. Chen, A. Asundi. Temporal phase unwrapping algorithms for fringe projection profilometry: a comparative review. Opt. Lasers Eng., 85, 84(2016).

    [18] M. Gdeisat. Performance evaluation and acceleration of Flynn phase unwrapping algorithm using wraps reduction algorithms. Opt. Lasers Eng., 110, 172(2018).

    [19] L. Li, Y. Zheng, K. Yang, X. Su, Y. Wang, X. Chen, Y. Wang, B. Li. Modified three-wavelength phase unwrapping algorithm for dynamic three-dimensional shape measurement. Opt. Commun., 480, 126409(2020).

    [20] X. He, Q. Kemao. A comparison of n-ary simple code and n-ary Gray code phase unwrapping in high-speed fringe projection profilometry. Opt. Lasers Eng., 128, 106046(2020).

    [21] X. He, D. Zheng, Q. Kemao, G. Christopoulos. Quaternary Gray-code phase unwrapping for binary fringe projection profilometry. Opt. Lasers Eng., 121, 358(2019).

    [22] Q. Zhang, X. Su, L. Xiang, X. Sun. 3-D shape measurement based on complementary Gray-code light. Opt. Lasers Eng., 50, 574(2012).

    [23] F. J. Lawin, P. E. Forssén, H. Ovrén. Efficient multi-frequency phase unwrapping using kernel density estimation. European Conference on Computer Vision(2016).

    [24] F. Liu, J. Li, J. Lai, C. He. Full-frequency phase unwrapping algorithm based on multi-frequency heterodyne principle. Laser Optoelectron. Prog., 56, 011202(2019).

    [25] E. H. Kim, J. Hahn, H. Kim, B. Lee. Profilometry without phase unwrapping using multi-frequency and four-step phase-shift sinusoidal fringe projection. Opt. Express, 17, 7818(2009).

    [26] Y. Wang, L. Liu, J. Wu, X. Song, X. Chen, Y. Wang. Dynamic three-dimensional shape measurement with a complementary phase-coding method. Opt. Lasers Eng., 127, 105982(2020).

    [27] S. Lv, Q. Sun, J. Yang, Y. Jiang, F. Qu, J. Wang. An improved phase-coding method for absolute phase retrieval based on the path-following algorithm. Opt. Lasers Eng., 122, 65(2019).

    [28] Y. Wu, G. Wu, L. Li, Y. Zhang, H. Luo, S. Yang, J. Yan, F. Liu. Inner shifting-phase method for high-speed high-resolution 3-D measurement. IEEE Trans. Instrum. Meas., 69, 7233(2020).

    [29] G. Wu, Y. Wu, L. Li, F. Liu. High-resolution few-pattern method for 3D optical measurement. Opt. Lett., 44, 3602(2019).

    [30] S. Yang, G. Wu, Y. Wu, J. Yan, H. Luo, Y. Zhang, F. Liu. High-accuracy high-speed unconstrained fringe projection profilometry of 3D measurement. Opt. Laser Technol., 125, 106063(2020).

    [31] L. Wang, Y. Chen, X. Han, Y. Fu, K. Zhong, G. Jiang. A 3D shape measurement method based on novel segmented quantization phase coding. Opt. Lasers Eng., 113, 62(2019).

    [32] C. Zhou, T. Liu, S. Si, J. Xu, Y. Liu, Z. Lei. An improved stair phase encoding method for absolute phase retrieval. Opt. Lasers Eng., 66, 269(2015).

    [33] M. Ma, P. Yao, J. Deng, H. Deng, J. Zhang, X. Zhong. A morphology phase unwrapping method with one code grating. Rev. Sci. Instrum., 89, 073110(2018).

    [34] M. van de Giessen, J. P. Angelo, S. Gioux. Real-time, profile-corrected single snapshot imaging of optical properties. Biomed Opt. Express, 6, 4051(2015).

    [35] H. H. Zou, X. Zhou, H. Zhao, T. Yang, H. B. Du, F. F. Gu, Z. X. Zhao. Color fringe-projected technique for measuring dynamic objects based on bidimensional empirical mode decomposition. Appl. Opt., 51, 3622(2012).

    [36] J. Lai, J. Li, C. He, F. Liu. A robust and effective phase-shift fringe projection profilometry method for the extreme intensity. Optik, 179, 810(2019).

    [37] Y. Yin, J. Mao, X. Meng, X. Yang, K. Wu, J. Xi, B. Sun. A two-step phase-shifting algorithm dedicated to fringe projection profilometry. Opt. Lasers Eng., 137, 106372(2021).

    Data from CrossRef

    [1] Min Wang, Qican Zhang, Qian Li, Zhoujie Wu, Chaowen Chen, Jin Xu, Junpeng Xue. Research on Morphology Detection of Metal Additive Manufacturing Process Based on Fringe Projection and Binocular Vision. Applied Sciences, 12, 9232(2022).

    Shichao Yang, Hanlin Huang, Gaoxu Wu, Yanxue Wu, Tian Yang, Fei Liu. High-speed three-dimensional shape measurement with inner shifting-phase fringe projection profilometry[J]. Chinese Optics Letters, 2022, 20(11): 112601
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