• Infrared and Laser Engineering
  • Vol. 49, Issue 3, 0303006 (2020)
Zonghua Zhang1、2, Jin Yu1, Nan Gao2, and Zhaozong Meng2
Author Affiliations
  • 1State Key Laboratory of Reliability and Intelligence of Electrical Equipment, Hebei University of Technology, Tianjin 300130, China
  • 2School of Mechanical Engineering, Hebei University of Technology, Tianjin 300130, China
  • show less
    DOI: 10.3788/IRLA202049.0303006 Cite this Article
    Zonghua Zhang, Jin Yu, Nan Gao, Zhaozong Meng. Three-dimensional shape measurement techniques of shiny surfaces[J]. Infrared and Laser Engineering, 2020, 49(3): 0303006 Copy Citation Text show less
    References

    [1] Qingyang Wu, Zeng Zeng, Baichun Zhang. A new 360° three-dimensional measurement system and calibration technology. Chinese Journal of Lasers, 44, 142-149(2017).

    [2] W Lohry, Song Zhang. High-speed absolute three-dimensional shape measurement using three binary dithered patterns. Optics Express, 22, 26752-26762(2014).

    [3] Xiang Peng, Yongkai Yin, Xiaoli Liu. Phase-assisted three-dimensional digital imaging and measurement. Acta Optica Sinica, 3, 181-193(2011).

    [4] Yu Wang, Xu Zhang, Chen Li. Research on 3D measurement method based on light field imaging. Chinese Journal of Scientific Instrument, 36, 1311-1318(2015).

    [5] Xinjun Zhu, Yaohui Deng, Chen Tang. Variational modal decomposition for phase retrieval in fringe projection 3D shape measurement. Optics and Precision Engineering, 24, 2318-2324(2016).

    [6] Zhangying Wang, Zonghua Zhang, Nan Gao. Single-shot 3D shape measurement of discontinuous objects based on coaxial fringe projection system. Applied Optics, 58, 169-178(2019).

    [7] S S Gorthi, P Rastogi. Fringe projection techniques: whither we are?. Optics and Lasers in Engineering, 48, 133-140(2010).

    [8] Wei Xing, Fumin Zhang, Wei Feng. High-gloss surface 3D measurement method based on digital micromirror devices. Acta Optica Sinica, 37, 193-199(2017).

    [9] Shijie Sun, Aiping Zhai, Yiping Cao. An algorithm for fast acquisition of three-dimensional shape and texture information of objects. Acta Optica Sinica, 36, 91-96(2016).

    [10] Hongbo Zheng, Yosung Ho, K Liu. Three dimensional imaging method of structured light for highly reflective objects. Laser and Optoelectronics Progress, 56, 133-140(2019).

    [11] Zonghua Zhang, Yuemin Wang, Shujun J Huang. Three-dimensional shape measurements of specular objects using phase-measuring deflectometry. Sensors, 17, 2835(2017).

    [12] Chunfeng Guo, Xiaoyan Lin, A Hu. Improved phase-measuring deflectometry for aspheric surfaces test. Applied Optics, 55, 2059-2064(2016).

    [13] Minshuang Huang. Time-of-flight laser ranging technique of single transmitted pulse. Laser and Optoelectronics Progress, 54, 63-69(2017).

    [14] Xianyu Su, Qican Zhang, Wenjing Chen. Structured light three-dimensional imaging technology. Chinese Journal of Lasers, 41, 1-10(2014).

    [15] Pan Ou, Ting Wang, Ruixiang Li. A 3D dental measurement system based on structured light. Laser and Optoelectronics Progress, 53, 115-119(2016).

    [16] Taotao Li, Feng Yang, Xianlei Xu. Method of large-scale measurement based on multi-vision line structured light sensor. Chinese Journal of Lasers, 44, 130-140(2017).

    [17] Lubin Zheng, Xiaodong Wang, Fei Yan. 3D reconstruction method based on linear-structured light stripe for welding seam. Laser and Optoelectronics Progress, 51, 118-124(2014).

    [18] D Palousek, M Omasta, D Koutny. Effect of matte coating on 3D optical measurement accuracy. Optical Materials, 40, 1-9(2015).

    [19] Lin Du, Huayan Sun, Shuai Wang. High dynamic range image fusion algorithm for dynamic targets. Acta Optica Sinica, 37, 101-109(2017).

    [20] Zhengfang Fu, Hong Zhu, Shan Xue. Multi-exposure image direct fusion algorithm based on Sigmoid function fitting. Chinese Journal of Scientific Instrument, 36, 2321-2329(2015).

    [21] Blais F. Review of 20 years of range sens development [C]Proceedings of SPIE , 2003 , 5013(1): 228240.

    [22] Hui Lin, Jian Gao, Guanjin Zhang. Review and comparison of high-dynamic range three-dimensional shape measurement techniques. Journal of Sensors, 2017, 1-11(2017).

    [23] G Sansoni, M Trebeschi, F Doccchio. State-of-the-art and applications of 3D imaging sensors in industry, cultural heritage, medicine, and criminal investigation. Sensors, 9, 568-601(2009).

    [24] Zelong Ma, Huibin Gao, Yi Yu. High-speed camera automatic exposure method using image histogram feature function. Optics and Precision Engineering, 25, 1026-1035(2017).

    [25] Kuidong Huang, Dinghua Zhang, Mingjun Li. Exposure parameter modeling and rapid optimization method for DR/CT imaging system. Chinese Journal of Scientific Instrument, 34, 981-986(2013).

    [26] Song Zhang, S T Yau. High dynamic range scanning technique. Optical Engineering, 48, 033604(2009).

    [27] Guihua Liu, Xianyong Liu, Quanyuan Feng. 3D shape measurement of objects with high dynamic range of surface reflectivity. Applied Optics, 50, 4557-4565(2011).

    [28] Shijie Feng, Yuzhen Zhang, Qian Chen. General solution for high dynamic range three-dimensional shape measurement using the fringe projection technique. Optics and Lasers in Engineering, 59, 56-71(2014).

    [29] Kai Zhong, Zhongwei Li, Xiaohui Zhou. Enhanced phase measurement profilometry for industrial 3D inspection automation. International Journal of Advanced Manufacturing Technology, 76, 1563-1574(2015).

    [30] Hongzhi Jiang, Huijie Zhao, Xudong Li. High dynamic range fringe acquisition: a novel 3-D scanning technique for high-reflective surfaces. Optics and Lasers in Engineering, 50, 1484-1493(2012).

    [31] Li Rao, Feifeng Da. High dynamic range 3D shape determination based on automatic exposure selection. Journal of Visual Communication and Image Representation, 50, 217-226(2018).

    [32] Huijie Zhao, Xiaoyue Liang, Xiaochun Diao. Rapid in-situ 3D measurement of shiny object based on fast and high dynamic range digital fringe projector. Optics and Lasers in Engineering, 54, 170-174(2014).

    [33] Wei Feng, Fumin Zhang, Weijing Wang. Adaptive high dynamic range imaging method based on digital micromirror device and its application. Acta Physica Sinica, 66, 234201(2017).

    [34] V Suresh, Yajun Wang, Beiwen Li. High-dynamic-range 3D shape measurement utilizing the transitioning state of digital micromirror device. Optics and Lasers in Engineering, 107, 176-181(2018).

    [35] Meng Chang, Huajun Feng, Zhihai Xu. Exposure correction and detail enhancement for single LDR image. Acta Photonica Sinica, 47, 0410003(2018).

    [36] Xinlong Liu, Hongwei Yi. Improved multi-exposure image fusion method. Acta Photonica Sinica, 48, 0810002(2019).

    [37] C Waddington, J Kofman. Analysis of measurement sensitivity to illuminance and fringe-pattern gray levels for fringe-pattern projection adaptive to ambient lighting. Optics and Lasers in Engineering, 48, 251-256(2010).

    [38] C Waddington, J Kofman. Modified sinusoidal fringe pattern projection for variable illuminance in phase-shifting three-dimensional surface-shape metrology. Optical Engineering, 53, 084109(2014).

    [39] Kofman J. Saturation avoidance by adaptive fringe projection in phaseshifting 3D surfaceshape measurement[C]IEEE International Symposium on Optomechatronic Technologies, IEEE, 2010: 1−4.

    [40] C Waddington, J Kofman. Camera-independent saturation avoidance in measuring high-reflectivity-variation surfaces using pixel-wise composed images from projected patterns of different maximum gray level. Optics Communications, 333, 32-37(2014).

    [41] Chao Chen, Nan Gao, Xiangjun Wang. Adaptive projection intensity adjustment for avoiding saturation in three-dimensional shape measurement. Optics Communications, 410, 694-702(2018).

    [42] Dong Li, J Kofman. Adaptive fringe-pattern projection for image saturation avoidance in 3D surface-shape measurement. Optics Express, 22, 9887-9901(2014).

    [43] G Babaie, M Abolbashari, F Farahi. Dynamics range enhancement in digital fringe projection technique. Precision Engineering, 39, 243-251(2015).

    [44] Hui Lin, Jian Gao, Qing Mei. Adaptive digital fringe projection technique for high dynamic range three-dimensional shape measurement. Optics Express, 24, 7703-7718(2016).

    [45] Shaoxu Li, Feipeng Da, Li Rao. Adaptive fringe projection technique for high-dynamic range three-dimensional shape measurement using binary search. Optical Engineering, 56, 1(2017).

    [46] Chao Chen, Nan Gao, Xiangjun Wang. Adaptive pixel-to-pixel projection intensity adjustment for measuring a shiny surface using orthogonal color fringe pattern projection. Measurement Science and Technology, 29, 055203(2018).

    [47] Chi Zhang, Jing Xu, Ning Xi. A robust surface coding method for optically challenging objects using structured light. IEEE Transactions on Automation Science and Engineering, 11, 775-788(2014).

    [48] J Riviere, I Reshetouski, L Filipi. Polarization imaging reflectometry in the wild. ACM Transactions on Graphics, 36, 1-14(2017).

    [49] Chen Tongbo, Lensch H, Fuchs C, et al. Polarization phaseshifting f 3D scanning of translucent objects[C]2007 IEEE Conference on Computer Vision Pattern Recognition, 2007: 18.

    [50] R Liang. Short wavelength and polarized phase shifting fringe projection imaging of translucent objects. Optical Engineering, 53, 014104(2014).

    [51] Feng Li, Jiantao Liu, Jiajia Cai. Surface shape measurement of mirror-like objects based on structured light method. Chinese Journal of Electron Devices, 37, 882-886(2014).

    [52] B Salahieh, Zhenyue Chen, J J Rodriguez. Multi-polarization fringe projection imaging for high dynamic range objects. Optics Express, 22, 10064-10071(2014).

    [53] Jinglei Hao, Yongqiang Zhao, Haimeng Zhao. 3D reconstruction of high-reflective and textureless targets bases on multispectral polarization and machine vision. Journal of Surveying and Mapping, 47, 816-824(2018).

    [54] A Shafers. Using color to separate reflection components. Color Research and Application, 10, 210-218(1985).

    [55] R T Tan, K Nishino, K Ikeuchi. Separating reflection components based on chromaticity and noise analysis. IEEE Transactions on Pattern Analysis and Machine Intelligence, 26, 1373-1379(2004).

    [56] T Gevers, A W M Smeulders. Color-based object recognition. Pattern Recognition, 32, 453-464(1999).

    [57] Benveniste R, Unsalan C. Single stripe projection based range scanning of shiny objects under ambient light[C]IEEE International Symposium on Computer Infmation Sciences, 2009: 1−6.

    [58] Benveniste R, Unsalan C. A col invariant based binary coded structured light range scanner f shiny objects[C]IEEE International Conference on Pattern Recognition, 2010: 798−801.

    [59] R Benveniste, C Unsalan. Binary and ternary coded structured light 3D scanner for shiny objects. Lecture Notes in Electrical Engineering, 62, 241-244(2010).

    [60] R Benveniste, C Unsalan. A color invariant for line stripe based range scanners. Computer Journal, 54, 738-753(2011).

    [61] R Benveniste, C Unsalan. Nary coded structured light based range scanners using color invariants. Journal of Real Time Image Processing, 9, 359-377(2014).

    [62] R J Woodham. Photometric method for determining surface orientation from multiple images. Optical Engineering, 19, 1-22(1992).

    [63] Liang Lu, Lin Qi, Yisong Luo. Three-dimensional reconstruction from single image base on combination of cnn and multi-spectral photometric stereo. Sensors, 18, 764(2018).

    [64] Yufeng Yang, Zhensen Wu, Yunhua Cao. Scattering characteristics of complex background infrared radiation from a non-lambertian targets. Infrared and Laser Engineering, 40, 800-804(2011).

    [65] Meng Lingfei, Lu Liyang, Bedard N, et al. Singleshot specular surface reconstruction with gonioplenoptic imaging[C]IEEE International Conference on Computer Vision, 2016: 34333441.

    [66] Boxin Shi, Zhiping Mo, Zhe Wu. A benchmark dataset and evaluation for non-lambertian and uncalibrated photometric stereo. IEEE Transactions on Pattern Analysis and Machine Intelligence, 41, 271-484(2019).

    [67] F Mattino, C Patruno, N Mosca. Material recognition by feature classification using time-of-flight camera. Journal of Electronic Imaging, 41, 271-484(2019).

    [68] Logothetis F, Mecca R, Cipolla R. Semicalibrated near field photometric stereo[C]IEEE Computer Vision Pattern Recognition, 2017: 4521−4530.

    [69] ikawa K, Yamaskaki T, Aizawa K. Uncalibrated photometric stereo by stepwise optimization using principal components of isotropic BRDFs[C]IEEE Computer Vision Pattern Recognition, 2016: 4350−4358.

    [70] Li Changjiang, Zhang Zhong, Imamura T, et al. An efficient BRDF acquisition f glossy surface[C]IEEE International Conference on Advanced Computer They Engineering, 2010: V2141−V2145.

    [71] D B Goldman, B Curless, A Hertzmann. Shape and spatially-varying BRDFs from photometric stereo. IEEE Transactions on Pattern Analysis and Machine Intelligence, 32, 1060-1071(2010).

    [72] Chung Hinshun, Jia Jiaya. Efficient photometric stereo on glossy surfaces with wide specular lobes[C]IEEE Computer Vision Pattern Recognition, 2008: 1−8.

    [73] Geghiades A S. Recovering 3D shape reflectance from a small number of photographs[C]14th Eurographics Wkshop on Rendering Techniques, DBLP, 2003: 230−240.

    [74] Songlin Chen, Renbo Xia, Jibin Zhao. Analysis and reduction of phase errors caused by nonuniform surface reflectivity in a phase-shifting measurement system. Optical Engineering, 56, 033102(2017).

    [75] R Kowarschik, P Kuhmstedt, J Gerber. Adaptive optical three-dimensional measurement with structured light. Optical Engineering, 39, 150-158(2000).

    [76] Jeong J, Hong D, Cho H. Measurement of partially specular objects by controlling imaging range[C]Proceedings of SPIE, 2007, 6718: 671808.

    [77] Wei Feng, Fumin Zhang, Xinghua Qu. Per-pixel coded exposure for high-speed and high-resolution imaging using a digital micromirror device camera. Sensors, 16, 331(2016).

    [78] Zhan Song, R Chung, Xiaoting Zhang. An accurate and robust strip-edge-based structured light means for shiny surface micro measurement in 3-D. IEEE Transactions on Industrial Electronics, 60, 1023-1032(2013).

    [79] Jing Zhao, Yongchang Wang, Kai Liu. A method to suppress the saturation error of phase measurement profilometry. Chinese Journal of Lasers, 40, 180-187(2013).

    [80] Chufan Jiang, T Bell, Song Zhang. High dynamic range real-time 3D shape measurement. Optics Express, 24, 7337-7346(2016).

    CLP Journals

    [1] Jingfa Lei, Haoran Xie, Yongling Li, Dong Wu, Miao Zhang, Ruhai Zhao. High dynamic range surface measurement method based on adaptive multi-exposure fusion[J]. Infrared and Laser Engineering, 2024, 53(1): 20230370

    [2] Zhangying Wang, Ningning Zhang, Nan Gao, Kui Li, Zhaozong Meng, Zonghua Zhang. 3D surface shape measurement of high dynamic range object based on monochrome fringe projection[J]. Infrared and Laser Engineering, 2023, 52(8): 20230327

    [3] Xiaodong Wang, Songyu Hu. Continuous smart light source controller design for laser structure light measurement[J]. Infrared and Laser Engineering, 2021, 50(3): 20200180

    [4] Jingwen Yang, Zonghua Zhang, Lina Fu, Yanling Li, Nan Gao, Feng Gao. Depth range enhancement of three-dimensional profiling measurement technology based on dithering algorithms[J]. Infrared and Laser Engineering, 2023, 52(8): 20230059

    [5] Po Zhu, Zonghua Zhang, Nan Gao, Feng Gao, Zhangying Wang. Three-dimensional surface topography measurement technology of color highly reflective objects[J]. Infrared and Laser Engineering, 2023, 52(7): 20220761

    [6] Xinjun Zhu, Linpeng Hou, Limei Song, Mengkai Yuan, Hongyi Wang, Zhichao Wu. Fringe structured light 3D reconstruction based on virtual binocular[J]. Infrared and Laser Engineering, 2022, 51(11): 20210955

    [7] Xinxin He, Bin Liu, Chunliu Wang, Guanhao Wu. Block-smoothed adaptive fringe projection for measuring high-reflective surface[J]. Infrared and Laser Engineering, 2023, 52(5): 20220825

    Zonghua Zhang, Jin Yu, Nan Gao, Zhaozong Meng. Three-dimensional shape measurement techniques of shiny surfaces[J]. Infrared and Laser Engineering, 2020, 49(3): 0303006
    Download Citation