Detecting Fabric Defects with Computer Vision and Fuzzy Rule Generation. Part I: Defect Classification by Image Processing

Author:

Jeong Sung Hoon1,Choi Hyung Taek1,Kim Sook Rae1,Jaung Jae Yun1,Kim Seong Hun1

Affiliation:

1. Department of Fiber and Polymer Engineering, Hanyang University, Seoul 133-791, South Korea

Abstract

A fabric defect detecting system that uses an advanced method involving computer vision and image analysis is capable of defect classification. Image pre-processing techniques that enhance raw images are applied before defect classification by a K-means algorithm and statistical method. These generate a Bayes classifier from which a decision surface is created for a classification procedure that can categorize defective or nondefective regions. Defect detection of the test fabric image is implemented by the decision surface from the training fabric image. The advantages of using the decision surface are a reduction in the training step and the ability to rapidly classify fabric. Experimental results confirm the reliable and reasonable classification ability of the proposed system.

Publisher

SAGE Publications

Subject

Polymers and Plastics,Chemical Engineering (miscellaneous)

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