Laser & Optoelectronics Progress, Volume. 58, Issue 12, 1210003(2021)

Defect Detection of Electrowetting Display Based on Histogram Gradient Weighting

Lingling Xiong1,2, Qinkai Liao1,2, Shanling Lin2,3, Zhixian Lin1,2、*, and Tailiang Guo1,2
Author Affiliations
  • 1College of Physics and Information Engineering, Fuzhou University, Fuzhou, Fujian 350116, China
  • 2Fujian Science & Technology Innovation Laboratory for Optoelectronic Information of China, Fuzhou, Fujian 350116, China
  • 3School of Advanced Manufacturing, Fuzhou University, Quanzhou, Fujian 362200, China
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    When the image histogram is a single peak, the traditional Otsu method can easily obtain wrong results in detecting defect in the electrowetting display. In some improved methods, the segmentation results are unstable when the defect color depth is different, and the contrast between the background and defect is low. In this study, an improved maximum between-class variance method is proposed to solve these problems. To improve the difference between the peak and non-peak ranges of the histogram and to better extract the peak information, the proposed method adds a weight value that decreases with an increase in the cumulant of gray histogram gradient before the target variance. It ensures that the threshold obtained by the method is always on the left side of the single peak for a single peak. Experimental results showed that the average misclassification error of the proposed method in multiple application scenarios is reduced by 0.4781 compared with the traditional Otsu method. Besides, the average defect segmentation rate of the proposed method is increased by 0.6795. The method can successfully segment electrowetting display defect and various types of defect. The segmentation effect is better when the contrast between the defect and background is low.

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    Lingling Xiong, Qinkai Liao, Shanling Lin, Zhixian Lin, Tailiang Guo. Defect Detection of Electrowetting Display Based on Histogram Gradient Weighting[J]. Laser & Optoelectronics Progress, 2021, 58(12): 1210003

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    Paper Information

    Category: Image Processing

    Received: Aug. 31, 2020

    Accepted: Oct. 14, 2020

    Published Online: Jun. 18, 2021

    The Author Email: Lin Zhixian (lzx2005000@163.com)

    DOI:10.3788/LOP202158.1210003

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