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铝型材表面喷涂质量的图像检测与研究
引用本文:岳晓峰,胡继文. 铝型材表面喷涂质量的图像检测与研究[J]. 吉林大学学报(信息科学版), 2016, 34(3): 413-418. DOI: 10.3969/j.issn.1671-5896.2016.03.018
作者姓名:岳晓峰  胡继文
作者单位:长春工业大学机电工程学院,长春,130012;长春工业大学机电工程学院,长春,130012
基金项目:吉林省科技厅基金资助项目(20110303)
摘    要:针对用人眼检测铝型材表面喷涂质量效率低且容易疲劳的问题, 提出了基于数学形态学颗粒分析和改进后的模糊核聚类的图像检测方案。对铝型材表面喷涂的图像进行形态学颗粒分析, 利用数学形态学的并行结构特性通过核函数在特征空间中进行模糊核聚类, 从而达到质量检测的目的。实验结果表明, 该方法收敛速度达到18. 4 s, 分类准确率达到91. 6%, 在整体性能上超过传统的聚类方法, 并具有较强的鲁棒性。

关 键 词:数学形态学  颗粒分析  核函数  聚类分析
收稿时间:2015-07-29

Image Inspection and Research of Aluminum Surface Coating Quality
YUE Xiaofeng,HU Jiwen. Image Inspection and Research of Aluminum Surface Coating Quality[J]. Journal of Jilin University:Information Sci Ed, 2016, 34(3): 413-418. DOI: 10.3969/j.issn.1671-5896.2016.03.018
Authors:YUE Xiaofeng  HU Jiwen
Affiliation:College of Mechanical and Electrical Engineering, Changchun University of Technology, Changchun 130012, China
Abstract:Aluminum surface coating quality in production enterprises generally inspected by human eyes.Because the human eye can easily fatigue, and detection is inefficient. In view of this kind of situation, we proposed the method of image inspection based on the particle analysis of mathematical morphology and fuzzy
kernel clustering. Firstly we use morphology particle analysis for the image coating surface of the aluminum, then se parallel structure characteristic of the mathematical morphology by introducing kernel function to fuzzy kernel lustering in the feature space, to achieve the purpose of quality inspection. The experimental results show that this method can achieve convergence rate 18. 4 s, classification accuracy rate can reach 91. 6%, the overall performance is better than the traditional clustering methods, and has strong robustness.
Keywords:mathematical morphology  granulometry  kernel function  clustering analysis
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