Defect image segmentation using multilevel thresholding based on firefly algorithm with opposition-learning

被引:3
|
作者
机构
[1] Chen, Kai
[2] Dai, Min
[3] Zhang, Zhisheng
[4] Chen, Ping
[5] Shi, Jinfei
来源
Zhang, Zhisheng (oldbc@seu.edu.cn) | 1600年 / Southeast University卷 / 30期
关键词
Bioluminescence - Fire protection - Image segmentation - Particle swarm optimization (PSO) - Learning algorithms;
D O I
10.3969/j.issn.1003-7985.2014.04.006
中图分类号
学科分类号
摘要
To segment defects from the quad flat non-lead (QFN) package surface, a multilevel Otsu thresholding method based on the firefly algorithm with opposition-learning is proposed. First, the Otsu thresholding algorithm is expanded to a multilevel Otsu thresholding algorithm. Secondly, a firefly algorithm with opposition-learning(OFA) is proposed. In the OFA, opposite fireflies are generated to increase the diversity of the fireflies and improve the global search ability. Thirdly, the OFA is applied to searching multilevel thresholds for image segmentation. Finally, the proposed method is implemented to segment the QFN images with defects and the results are compared with three methods, i.e., the exhaustive search method, the multilevel Otsu thresholding method based on particle swarm optimization and the multilevel Otsu thresholding method based on the firefly algorithm. Experimental results show that the proposed method can segment QFN surface defects images more efficiently and at a greater speed than that of the other three methods. ©, 2014, Southeast University. All right reserved.
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