Adaptive pixel-to-pixel projection intensity adjustment for measuring a shiny surface using orthogonal color fringe pattern projection

被引:60
作者
Chen, Chao [1 ]
Gao, Nan [1 ]
Wang, Xiangjun [2 ]
Zhang, Zonghua [1 ,3 ]
机构
[1] Hebei Univ Technol, Sch Mech Engn, Tianjin 300130, Peoples R China
[2] Tianjin Univ, State Key Lab Precis Measuring Technol & Instrume, Tianjin 300072, Peoples R China
[3] Univ Huddersfield, Ctr Precis Technol, Huddersfield HD1 3DH, W Yorkshire, England
基金
中国国家自然科学基金; 国家重点研发计划;
关键词
fringe projection; high dynamic range; shiny surface; 3D measurement; 3-DIMENSIONAL SHAPE MEASUREMENT; STRUCTURED LIGHT; SATURATION AVOIDANCE; CALIBRATION METHOD; IMAGING-SYSTEM; PROFILOMETRY; OBJECTS;
D O I
10.1088/1361-6501/aab07a
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Three-dimensional (3D) shape measurement based on fringe pattern projection techniques has been commonly used in various fields. One of the remaining challenges in fringe pattern projection is that camera sensor saturation may occur if there is a large range of reflectivity variation across the surface that causes measurement errors. To overcome this problem, a novel fringe pattern projection method is proposed to avoid image saturation and maintain high-intensity modulation for measuring shiny surfaces by adaptively adjusting the pixel-to-pixel projection intensity according to the surface reflectivity. First, three sets of orthogonal color fringe patterns and a sequence of uniform gray-level patterns with different gray levels are projected onto a measured surface by a projector. The patterns are deformed with respect to the object surface and captured by a camera from a different viewpoint. Subsequently, the optimal projection intensity at each pixel is determined by fusing different gray levels and transforming the camera pixel coordinate system into the projector pixel coordinate system. Finally, the adapted fringe patterns are created and used for 3D shape measurement. Experimental results on a flat checkerboard and shiny objects demonstrate that the proposed method can measure shiny surfaces with high accuracy.
引用
收藏
页数:15
相关论文
共 26 条
[1]   Dynamics range enhancement in digital fringe projection technique [J].
Babaie, Gelareh ;
Abolbashari, Mehrdad ;
Farahi, Faramarz .
PRECISION ENGINEERING-JOURNAL OF THE INTERNATIONAL SOCIETIES FOR PRECISION ENGINEERING AND NANOTECHNOLOGY, 2015, 39 :243-251
[2]   Structured light field 3D imaging [J].
Cai, Zewei ;
Liu, Xiaoli ;
Peng, Xiang ;
Yin, Yongkai ;
Li, Ameng ;
Wu, Jiachen ;
Gao, Bruce Z. .
OPTICS EXPRESS, 2016, 24 (18) :20324-20334
[3]   Calibration method for a structured light measurement system with two different focal length cameras [J].
Dong, Shengsheng ;
He, Bingwei ;
Lin, Chang ;
Zhao, Qiang ;
Shen, Henghua .
MEASUREMENT, 2015, 73 :462-472
[4]   General solution for high dynamic range three-dimensional shape measurement using the fringe projection technique [J].
Feng, Shijie ;
Zhang, Yuzhen ;
Chen, Qian ;
Zuo, Chao ;
Li, Rubin ;
Shen, Guochen .
OPTICS AND LASERS IN ENGINEERING, 2014, 59 :56-71
[5]   A Practical Approach to 3D Scanning in the Presence of Interreflections, Subsurface Scattering and Defocus [J].
Gupta, Mohit ;
Agrawal, Amit ;
Veeraraghavan, Ashok ;
Narasimhan, Srinivasa G. .
INTERNATIONAL JOURNAL OF COMPUTER VISION, 2013, 102 (1-3) :33-55
[6]  
Gupta M, 2011, PROC CVPR IEEE, P713, DOI 10.1109/CVPR.2011.5995321
[7]   High dynamic range real-time 3D shape measurement [J].
Jiang, Chufan ;
Bell, Tyler ;
Zhang, Song .
OPTICS EXPRESS, 2016, 24 (07) :7337-7346
[8]   High dynamic range fringe acquisition: A novel 3-D scanning technique for high-reflective surfaces [J].
Jiang, Hongzhi ;
Zhao, Huijie ;
Li, Xudong .
OPTICS AND LASERS IN ENGINEERING, 2012, 50 (10) :1484-1493
[9]   Adaptive fringe-pattern projection for image saturation avoidance in 3D surface-shape measurement [J].
Li, Dong ;
Kofman, Jonathan .
OPTICS EXPRESS, 2014, 22 (08) :9887-9901
[10]   Three-dimensional shape measurement technique for shiny surfaces by adaptive pixel-wise projection intensity adjustment [J].
Lin, Hui ;
Gao, Jian ;
Mei, Qing ;
Zhang, Guanjin ;
He, Yunbo ;
Chen, Xin .
OPTICS AND LASERS IN ENGINEERING, 2017, 91 :206-215