Aiming at the low adaptability of blurring noise of target feature points in traditional calibration methods, a calibration method based on the color-coded phase-shifted fringe is proposed. Using a liquid crystal display panel as the calibration target, horizontal and vertical color-coded phase-shifted stripes are displayed in sequence; the orthogonal phase-shifted stripes are obtained by separating color channels; based on the phase-shifteg theory, the intersections of the orthogonal phase truncation lines are calculated as the feature points. After changing the target position multiple times and extracting feature points, the plane-based camera calibration technique is applied to realize the calibration of both the single camera and the binocular system. Furthermore, color-coded phase-shift circles are added to four corners of the target pattern to automatically extract and sort feature points. Accordingly, the efficiency of calibration is promoted. The experimental results indicate that when the target image is blurred, the reprojection error of the single-camera calibration is 0.15 pixels, and the standard deviation of the binocular system measurement after calibration is 0.1 mm.
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Opto-Electronic Engineering
ISSN: 1003-501X
CN: 51-1346/O4
Monthly, included in CA, Scopus, CSCD
CN: 51-1346/O4
Monthly, included in CA, Scopus, CSCD
Camera calibration based on color-coded phase-shifted fringe
Author Affiliations

First published at:Jan 15, 2021
Abstract
References
[1] Li L L, Zhao W C, Wu F, et al. Experimental analysis and improvement on camera calibration pattern[J]. Opt Eng, 2014, 53(1): 013104.
[2] Mallon J, Whelan P F. Which pattern? Biasing aspects of planar calibration patterns and detection methods[J]. Pattern Recognit Lett, 2007, 28(8): 921–930.
[3] Li D, Tian J D. An accurate calibration method for a camera with telecentric lenses[J]. Opt Lasers Eng, 2013, 51(5): 538–541.
[4] Liu Z, Wu Q, Chen X, et al. High-accuracy calibration of low-cost camera using image disturbance factor[J]. Opt Express, 2016, 24(21): 24321–24336.
[5] Bell T, Xu J, Zhang S. Method for out-of-focus camera calibration[J]. Appl Opt, 2016, 55(9): 2346–2352.
[6] Wang Y W, Chen X C, Tao J Y, et al. Accurate feature detection for out-of-focus camera calibration[J]. Appl Opt, 2016, 55(28): 7964–7971.
[7] Liu Y K, Su X Y. A new camera calibration technique using FTP method[J]. J Sichuan Univ (Eng Sci Ed), 2007, 39(6): 149–153.
刘元坤, 苏显渝. 基于傅里叶条纹分析的摄像机标定[J]. 四川大学学报(工程科学版), 2007, 39(6): 149–153.
[8] Li L L, Zhao W C, Wu F, et al. Analysis and improvement of characteristic points extraction algorithms in camera calibration[J]. Acta Opt Sin, 2014, 34(5): 0515002.
李璐璐, 赵文川, 伍凡, 等. 摄像机标定中的特征点提取算法研究与改进[J]. 光学学报, 2014, 34(5): 0515002.
[9] Ma M C, Chen X C, Wang K Y. Camera calibration by using fringe patterns and 2D phase-difference pulse detection[J]. Optik, 2014, 125(2): 671–674.
[10] Yang H, Cai N, Lin B, et al. Defocus camera calibration based on sinusoidal phase coding[J]. Acta Photon Sin, 2018, 47(7): 0715002.
杨浩, 蔡宁, 林斌, 等. 基于正弦相位编码的相机离焦标定[J]. 光子学报, 2018, 47(7): 0715002.
[11] Ge W. Research on 3D measurement based on color phase-encoded fringe projection[D]. Nanjing: Dongnan University, 2016: 4–6.
葛尉. 基于彩色相位编码条纹投影的三维测量方法研究[D]. 南京: 东南大学, 2016: 4–6.
[12] Pan J H, Huang P S, Chiang F P. Color phase-shifting technique for three-dimensional shape measurement[J]. Opt Eng, 2006, 45(1): 013602.
[13] Heikkila J. Geometric camera calibration using circular control points[J]. IEEE Trans Pattern Anal Mach Intell, 2000, 22(10): 1066–1077.
[14] Huo J, Yang W, Yang M. A self-calibration technique based on the geometry property of the vanish point[J]. Acta Opt Sin, 2010, 30(2): 465–472.
霍炬, 杨卫, 杨明. 基于消隐点几何特性的摄像机自标定方法[J]. 光学学报, 2010, 30(2): 465–472.
[15] Zhang Z Y. Flexible camera calibration by viewing a plane from unknown orientations[C]//Proceedings of the Seventh IEEE International Conference on Computer Vision, 1999, 1: 666–673.
[16] Zhang Z H. Review of single-shot 3D shape measurement by phase calculation-based fringe projection techniques[J]. Opt Lasers Eng, 2012, 50(8): 1097–1106.
[17] Wang N, Zhang Q C, Ma K. 3-D shape measurement for isolated objects based on color-encoded fringe projection[J]. J Optoelectron•Laser, 2010, 21(8): 1227–1231.
王娜, 张启灿, 麻珂. 基于彩色编码条纹投影的孤立物体三维测量[J]. 光电子•激光, 2010, 21(8): 1227–1231.
[18] Liu D H, Lin B. Fourier transform profilometry using zero frequency elimination based on gray modulation[J]. Acta Photon Sin, 2011, 40(11): 1697–1701.
刘大海, 林斌. 利用强度调制消除零频的傅里叶变换轮廓测量[J]. 光子学报, 2011, 40(11): 1697–1701.
[19] Huang P S, Zhang S. Fast three-step phase-shifting algorithm[J]. Appl Opt, 2006, 45(21): 5086–5091.
[20] Lu J, Mo R, Sun H B, et al. Invalid phase values removal method for absolute phase recovery[J]. Appl Opt, 2016, 55(2): 387–394.
[21] Nellros F, Thurley M J, Jonsson H, et al. Automated measurement of sintering degree in optical microscopy through image analysis of particle joins[J]. Pattern Recognit, 2015, 48(11): 3451–3465.
[22] Chen N Q, Wang J J, Yu L A, et al. Sub-pixel edge detection of led probes based on canny edge detection and iterative curve fitting[C]//2014 International Symposium on Computer, Consumer and Control, 2014, 6: 131–134.
[23] Yuen H K, Princen J, Illingworth J, et al. Comparative study of Hough transform methods for circle finding[J]. Image Vis Comput, 1990, 8(1): 71–77.
[24] Tsai R Y. A versatile camera calibration technique for high-accuracy 3D machine vision metrology using off-the-shelf TV cameras and lenses[J]. IEEE J Robot Autom, 1987, 3(4): 323–344.
[25] Kaehler A, Bradski G. Learning OpenCV 3: Computer Vision in C++ with the OpenCV Library[M]. Beijing: O'Reilly Media, Inc., 2016.
[26] Wang S, Xu X. 3D reconstruction based on horopter[J]. Acta Opt Sin, 2017, 37(5): 0515004.
王珊, 徐晓. 基于双目单视面的三维重建[J]. 光学学报, 2017, 37(5): 0515004.
[27] Sun J H, Yang Y, Zhang G J. Three dimensional scanning technique using color structured light patterns based on phase moving coding strategy[J]. Opt Tech, 2008, 34(1): 122–125.
孙军华, 杨扬, 张广军. 基于相移的彩色结构光编码三维扫描技术[J]. 光学技术, 2008, 34(1): 122–125.
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National Natural Science Foundation of China (61535008)
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Wei Boyan, Tian Qingguo, Ge Baozhen. Camera calibration based on color-coded phase-shifted fringe[J]. Opto-Electronic Engineering, 2021, 48(1): 200118.