Real-time image defect detection system of cloth digital printing machine

Hongliang Liu
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Abstract

Abstract In order to solve the surface defects such as white silk, spots and wrinkles in the process of digital printing, a surface defect detection system for printed fabrics based on accelerated robust feature algorithm was proposed. Image registration is mainly carried out through accelerated robust feature (SURF); bidirectional unique matching method is adopted to reduce mismatch points, achieve accurate image registration, and extract defect information through differential algorithm. The performance of the improved surfing algorithm is verified by using multiple images. The experimental results show that compared with the traditional template matching method, the detection accuracy of the system detection algorithm is 12% higher, and the average time is 42.81 ms shorter than the traditional template matching method. Experiments show that the improved surfing algorithm has short time and high precision. The system can meet the actual production needs. The new system can detect surface defects on printed fabrics with an accuracy of 98%. Conclusion: The algorithm has higher detection rate and faster detection speed, which can meet the needs of practical industrial applications.
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布料数码印花机实时图像缺陷检测系统
摘要为了解决数码印花过程中出现的白丝、斑点、起皱等表面缺陷,提出了一种基于加速鲁棒特征算法的印花织物表面缺陷检测系统。图像配准主要通过加速鲁棒特征(SURF)实现;采用双向唯一匹配方法,减少错配点,实现准确的图像配准,并通过微分算法提取缺陷信息。通过多幅图像验证了改进的冲浪算法的性能。实验结果表明,与传统模板匹配方法相比,系统检测算法的检测精度提高了12%,平均时间比传统模板匹配方法缩短了42.81 ms。实验表明,改进的冲浪算法具有时间短、精度高等优点。该系统可以满足实际生产需要。新系统可以检测印花织物表面缺陷,准确率达到98%。结论:该算法具有更高的检测率和更快的检测速度,能够满足实际工业应用的需要。
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