Details of Research Outputs

Status已发表Published
TitleAutomatic Detection of Dispersed Defects in Resin Eyeglass Based on Machine Vision Technology
Creator
Date Issued2020
Source PublicationIEEE Access
ISSN2169-3536
Volume8Pages:44661-44670
Abstract

This paper is concerned with detection of dispersed defects in the resin eyeglass. At present, manual detection is always used in industry, which inevitably causes impairing eyes and a high rate of false-negative detection. Statistics show that its average accuracy and the average detection time are about 85% and 10s, respectively. We for the first time propose an automatic approach to detection of dispersed defects in resin eyeglass, based on the machine vision technology. It is observed that the refractivity of the normal and the defective regions of an eyeglass are different, and thus the reflection image is also collected in our system in addition to the normal transmission image. Such an optical imaging system is modelled and its analysis shows the gray-scale gradient difference between the normal and defective regions in the acquired image is dramatically enhanced under the illumination of a point light source with our designed system. An image processing algorithm is then developed to reveal the above difference and detect dispersed defects in resin eyeglasses. Our simulation study verifies the proposed approach. Further, its experimental evaluation was carried out and the result was consistent with the simulation one, showing that its detection accuracy and the average detection time were 97.50% and 0.636s, respectively, which meet the requirements for online detection of dispersed defects. © 2013 IEEE.

KeywordAutomatic detection dispersed defects imaging analysis machine vision resin eyeglass
DOI10.1109/ACCESS.2020.2978001
URLView source
Indexed BySCIE
Language英语English
WOS Research AreaComputer Science ; Engineering ; Telecommunications
WOS SubjectComputer Science, Information Systems ; Engineering, Electrical & Electronic ; Telecommunications
WOS IDWOS:000524712900018
Citation statistics
Cited Times:11[WOS]   [WOS Record]     [Related Records in WOS]
Document TypeJournal article
Identifierhttp://repository.uic.edu.cn/handle/39GCC9TT/3567
CollectionResearch outside affiliated institution
Affiliation
1.Faculty of Electrical Engineering and Automation, Changshu Institute of Technology, Changshu, 215500, China
2.Faculty of Engineering and the Built Environment, Institute for Intelligent Systems, University of Johannesburg, Johannesburg, 2006, South Africa
3.School of Mechanical Engineering, Jiangsu University, Zhenjiang, 212013, China
Recommended Citation
GB/T 7714
Ding, Wei,Wang, Qingguo,Zhu, Jianfeng. Automatic Detection of Dispersed Defects in Resin Eyeglass Based on Machine Vision Technology[J]. IEEE Access, 2020, 8: 44661-44670.
APA Ding, Wei, Wang, Qingguo, & Zhu, Jianfeng. (2020). Automatic Detection of Dispersed Defects in Resin Eyeglass Based on Machine Vision Technology. IEEE Access, 8, 44661-44670.
MLA Ding, Wei,et al."Automatic Detection of Dispersed Defects in Resin Eyeglass Based on Machine Vision Technology". IEEE Access 8(2020): 44661-44670.
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