• Optics and Precision Engineering
  • Vol. 31, Issue 12, 1741 (2023)
Ruizhe GAO1,*, Ailing TIAN1, Feng CHEN2, Dong YANG3, and YueYang MA1
Author Affiliations
  • 1Shaanxi Province Key Laboratory of Thin Films Technology and Optical Test, School of Optoelectronic Engineering, Xi’an Technologcal University, Xi’an7002, China
  • 2Chongqing Chuanyi Automation Co., Ltd, Chongqing40070, China
  • 3CCICWestTestingCompanyLimited, Xi'an71002, China
  • show less
    DOI: 10.37188/OPE.20233112.1741 Cite this Article
    Ruizhe GAO, Ailing TIAN, Feng CHEN, Dong YANG, YueYang MA. High precision measurement of ruby ball diameter by compound secondary edge detection[J]. Optics and Precision Engineering, 2023, 31(12): 1741 Copy Citation Text show less

    Abstract

    For precisely measuring the diameters of ruby balls in a non-contact manner, a compound secondary edge detection method is proposed. First, the image of the ruby ball is preprocessed, and the adaptive threshold Canny edge detection algorithm is used to detect the edge of the ruby ball image. Second, an image fusion algorithm based on the pixel weighted average is used to fuse the binary image of the ruby ball and the edge detection image. Then, the edge of the fused image is extracted, the cubic spline interpolation method is used to interpolate the edge image, the subpixel coordinates of the image edge are obtained via curve fitting, and circle fitting is performed according to the coordinates. Thereafter, the detection results are obtained through calibration. Compound secondary edge detection is performed for precisely measuring the diameter of a ruby ball. The experimental results indicate that the measurement accuracy for a 6-mm ruby ball diameter can reach 2 μm, and the positioning accuracy is less than 0.1 pixels, thus satisfying the measurement requirements of enterprises and providing better technical support for industrial automatic detection.
    Ruizhe GAO, Ailing TIAN, Feng CHEN, Dong YANG, YueYang MA. High precision measurement of ruby ball diameter by compound secondary edge detection[J]. Optics and Precision Engineering, 2023, 31(12): 1741
    Download Citation