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High-precision color crosstalk coefficient calibration method based on phase error estimation

FENG Lu-yuan LIANG Jian WANG Xiang-jun ZHAO Zong-yang CHEN Yi-fan WU Bin

冯橹源, 梁健, 王湘峻, 赵宗扬, 陈羿帆, 吴斌. 基于相位误差估计的高精度色彩串扰系数标定方法[J]. 中国光学(中英文). doi: 10.37188/CO.EN-2025-0041
引用本文: 冯橹源, 梁健, 王湘峻, 赵宗扬, 陈羿帆, 吴斌. 基于相位误差估计的高精度色彩串扰系数标定方法[J]. 中国光学(中英文). doi: 10.37188/CO.EN-2025-0041
FENG Lu-yuan, LIANG Jian, WANG Xiang-jun, ZHAO Zong-yang, CHEN Yi-fan, WU Bin. High-precision color crosstalk coefficient calibration method based on phase error estimation[J]. Chinese Optics. doi: 10.37188/CO.EN-2025-0041
Citation: FENG Lu-yuan, LIANG Jian, WANG Xiang-jun, ZHAO Zong-yang, CHEN Yi-fan, WU Bin. High-precision color crosstalk coefficient calibration method based on phase error estimation[J]. Chinese Optics. doi: 10.37188/CO.EN-2025-0041

基于相位误差估计的高精度色彩串扰系数标定方法

详细信息
  • 中图分类号: TH741

High-precision color crosstalk coefficient calibration method based on phase error estimation

doi: 10.37188/CO.EN-2025-0041
Funds: Supported by National Natural Science Foundation of China (No. 62371339).
More Information
    Author Bio:

    FENG Lu-yuan, male, born in Heibei Province. He received the Ph.D. degree in Measurement and Control Technology and Instrument from Tianjin University, Tianjin, China, in 2025. He is currently with the China Ordnance Navigation and Control Technology Research Institute, China. His research interests include inertial navigation and vision inspection

    WU Bin, male, born in Heinan Province. He received the B.S. and Ph.D. degrees in Tianjin University, in 1997 and 2002, respectively. He is currently a Professor with the Department of Instrumentation Science and Technology, Tianjin University. His main research interests include: compute vision, object detection and vision measurement technology

    Corresponding author: wubin@tju.edu.cn
  • 摘要:

    彩色编码条纹图案已成为实现条纹投影轮廓术实时三维形貌测量的重要方法。然而,彩色相机中的色彩串扰现象仍然是限制测量精度的主要因素。针对这一问题,本文提出了一种精确的色彩串扰系数标定方法,以实现有效的色彩串扰校正。首先,设计了一种基于正交相位条纹的串扰系数估计器,从理论上推到了色彩串扰系数与相位误差的关系。同时,将设计的彩色正交条纹图案投影至标准平面靶标,实现R、G、B的彩色通道分离图案。最后,基于粒子群优化算法拟合通道串扰相位误差,从而实现高精度色彩串扰系数标定。基于标准双球球板的测量实验验证,两个球体的直径拟合误差分别为0.0191 mm和0.0160 mm,球心间距的计算误差低至0.0120 mm,证明该方法能够有效提高彩色相机在条纹投影技术中的测量精度和适用性。

     

  • 图 1  基于FPP的三维测量过程示意图

    Figure 1.  The schematic of the 3D measurement process based on FPP

    图 2  色彩串扰的示意图。 (a) Bayer阵列的结构模型;(b) 色彩串扰数学模型

    Figure 2.  The schematic of the color crosstalk. (a) the schematic model of Bayer array; (b) the color crosstalk model.

    图 3  补偿前的包裹相位误差分布图

    Figure 3.  Wrapped phase error distribution map before compensation.

    图 4  补偿后的包裹相位误差分布图

    Figure 4.  Wrapped phase error distribution map after compensation.

    图 5  所提出标定方法的流程图

    Figure 5.  Procedure of the proposed calibration method.

    图 6  研究实验中使用的CFPP系统示意图

    Figure 6.  CFPP system used in our experiments.

    图 7  单通道分离图像(含串扰系数)

    Figure 7.  Single-channel separated images containing crosstalk coefficients.

    图 8  不同通道的相位误差分布图。

    Figure 8.  Phase error distribution map of the different channels.

    图 9  不同通道的拟合结果图

    Figure 9.  The fitting results of the different channels.

    图 10  不同通道的相位误差分布图。

    Figure 10.  Phase error distribution map of different channels.

    图 11  色彩串扰校正前后的相位误差分布。(a)校正前的串扰引起的相位误差;(b)沿选定行的相位误差曲线;(c)校正后的残余相位误差

    Figure 11.  Phase error distributions before and after crosstalk correction. (a) Crosstalk-induced phase error before correction; (b) Phase error along a selected row; (c) Residual phase error after correction.

    图 12  标准球校准板的测量结果图。

    Figure 12.  Measurement results of the standard sphere calibration plate.

    表  1  The Results of Crosstalk Coefficients

    Table  1.   The Results of Crosstalk Coefficients

    $ {\kappa }_{st} $Value$ {R}^{2} $$ {\kappa }_{st} $Value$ {R}^{2} $
    κgr0.01510.995κrg0.05460.988
    κbg0.11520.995κgb0.05460.998
    κrb0.00520.964κbr0.06140.980
    下载: 导出CSV

    表  2  Measurement results of the standard sphere calibration plate (mm)

    Table  2.   Measurement results of the standard sphere calibration plate (mm)

    Measurement IndexDiameter dADiameter dBCenter Distance SAB
    131.728431.707860.0136
    231.723431.729860.0148
    331.736031.728359.9864
    431.752731.725860.0046
    531.732831.727359.9989
    631.728431.740459.9949
    731.728831.721860.0141
    831.722931.719460.0179
    931.730531.712759.9918
    1031.734031.720859.9898
    Mean Result31.731831.723460.0027
    MAE0.01910.01600.0120
    SD0.02040.01790.0152
    下载: 导出CSV
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出版历程
  • 收稿日期:  2025-10-16
  • 录用日期:  2025-11-06
  • 网络出版日期:  2025-12-03

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