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Sylvester Matrix-Based Similarity Estimation Method for Automation of Defect Detection in Textile Fabrics

机译:基于SYLVESTER矩阵的相似性估计方法,用于纺织织物缺陷检测的自动化

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Fabric defect detection is a crucial quality control step in the textile manufacturing industry. In this article, a machine vision system based on the Sylvester Matrix-Based Similarity Method (SMBSM) is proposed to automate the defect detection process. The algorithm involves six phases, namely, resolution matching, image enhancement using Histogram Specification and Median–Mean-Based Sub-Image-Clipped Histogram Equalization, image registration through alignment and hysteresis process, image subtraction, edge detection, and fault detection by means of the rank of the Sylvester matrix. The experimental results demonstrate that the proposed method is robust and yields an accuracy of 93.4%, a precision of 95.8%, and computational speed of 2275?ms.
机译:织物缺陷检测是纺织制造业的重要质量控制步骤。 在本文中,提出了一种基于Sylvester基质的相似性方法(SMBSM)的机器视觉系统,以自动化缺陷检测过程。 该算法涉及六个阶段,即,使用直方图规范和基于中位数的子图像剪切直方图均衡,通过对准和滞后过程,图像减法,边缘检测和故障检测的图像注册的图像增强,通过 Sylvester矩阵的等级。 实验结果表明,所提出的方法是稳健的,得到93.4%的精度,精度为95.8%,计算速度为2275?MS。

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