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使用新型形态学方法对光纤连接器端面缺陷进行自动检测。

Automated Inspection of Defects in Optical Fiber Connector End Face Using Novel Morphology Approaches.

机构信息

School of Mechanical Engineering and Electronic Infomation, China University of Geosciences, Wuhan 430074, China.

Wuhan Second Ship Design and Research Institute, Wuhan 430205, China.

出版信息

Sensors (Basel). 2018 May 3;18(5):1408. doi: 10.3390/s18051408.

Abstract

Increasing deployment of optical fiber networks and the need for reliable high bandwidth make the task of inspecting optical fiber connector end faces a crucial process that must not be neglected. Traditional end face inspections are usually performed by manual visual methods, which are low in efficiency and poor in precision for long-term industrial applications. More seriously, the inspection results cannot be quantified for subsequent analysis. Aiming at the characteristics of typical defects in the inspection process for optical fiber end faces, we propose a novel method, “difference of min-max ranking filtering” (DO2MR), for detection of region-based defects, e.g., dirt, oil, contamination, pits, and chips, and a special model, a “linear enhancement inspector” (LEI), for the detection of scratches. The DO2MR is a morphology method that intends to determine whether a pixel belongs to a defective region by comparing the difference of gray values of pixels in the neighborhood around the pixel. The LEI is also a morphology method that is designed to search for scratches at different orientations with a special linear detector. These two approaches can be easily integrated into optical inspection equipment for automatic quality verification. As far as we know, this is the first time that complete defect detection methods for optical fiber end faces are available in the literature. Experimental results demonstrate that the proposed DO2MR and LEI models yield good comprehensive performance with high precision and accepted recall rates, and the image-level detection accuracies reach 96.0 and 89.3%, respectively.

摘要

随着光纤网络的不断部署以及对可靠的高带宽的需求,检查光纤连接器端面成为一个至关重要的过程,不容忽视。传统的端面检查通常采用手动目视方法,效率低下,长期应用于工业生产时精度较差。更严重的是,检查结果无法量化,无法进行后续分析。针对光纤端面检查过程中的典型缺陷特征,我们提出了一种新的方法,即“最大最小值排序滤波差值”(Difference of Min-Max Ranking Filtering,简称 DO2MR),用于检测基于区域的缺陷,如污垢、油污、污染物、凹坑和碎屑,以及一种特殊的模型,即“线性增强检查器”(Linear Enhancement Inspector,简称 LEI),用于检测划痕。DO2MR 是一种形态学方法,旨在通过比较像素周围邻域的灰度值差异来确定像素是否属于缺陷区域。LEI 也是一种形态学方法,旨在使用特殊的线性探测器搜索不同方向的划痕。这两种方法可以很容易地集成到光学检测设备中,实现自动质量验证。据我们所知,这是文献中首次提出完整的光纤端面缺陷检测方法。实验结果表明,所提出的 DO2MR 和 LEI 模型具有良好的综合性能,精度高,召回率可接受,图像级别的检测准确率分别达到 96.0%和 89.3%。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5264/5982614/950a34002dd6/sensors-18-01408-g001.jpg

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