广东工业大学学报 ›› 2012, Vol. 29 ›› Issue (1): 46-49.

• 综合研究 • 上一篇    下一篇

基于BP神经网络的工艺球缺陷检测

  

  1. 广东工业大学 自动化学院,广东 广州 510006
  • 出版日期:2012-03-25 发布日期:2012-03-25
  • 作者简介:李刚(1986-),男,硕士研究生,主要研究方向为图像测控识别技术.

Detection of Defects in Process Balls Based on BP Neural Network

  1. Faculty of Automation, Guangdong University of Technology, Guangzhou 510006, China
  • Online:2012-03-25 Published:2012-03-25

摘要: 对羽毛球工艺球图像经过预处理,得到缺陷形状信息图像.提取图像的5个极半径不变矩特征、圆心度、球体外圆和球头圆心偏差总共7个特征参数构成图像特征向量组,建立三层结构的BP神经网络,以这7个不变量特征值组成的特征向量归一化后作为神经网络的输入,根据神经网络的输出进行缺陷检测,实验结果证明了该方法能有效地用于羽毛球工艺球的缺陷检测.

关键词: 羽毛球工艺球;缺陷检测;极半径不变矩;BP神经网络

Abstract: The image of the information about the shape of defects in the shuttlecock process ball was obtained after pretreatment of the images of the shuttlecock process ball. Then, the five polarradius moment invariants, circularity, and the difference between the cylindrical part and the center of the ball in processed images were extracted. The seven normalized eigenvalues were input into the BP neural network, based on LevenbergMarquardt algorithm, and the trained network was used to be a detector to recognize the image pattern. Experimental results show that a relatively good recognition performance can be achieved to detect defects in shuttlecock process balls.

Key words: shuttlecock process ball; defect detection; polarradius moment invariant; BP neural network

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