Contaminant and foreign fiber detection in cotton using Gaussian mixture model

K. A. Peker, Gokhan Ozsan
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引用次数: 6

Abstract

Cotton is a very important material used in producing many fabric types. Contaminants from various sources need to be removed from cotton before fibers can be spun into yarn. Contaminants critically affect the quality of the yarn produced; any foreign material may result in unacceptable yarn or fabric, or even cause damage to the production machines. Automatic detection and removal of foreign fibers and contaminants in cotton is an essential technology for the modern textile industry. Various image processing and computer vision techniques have been proposed for the detection of foreign materials in cotton fibers. We describe a detection method using Gaussian mixture models and thresholding based on pixel probabilities. The proposed method gives promising results.
用高斯混合模型检测棉花中的污染物和外来纤维
棉花是一种非常重要的材料,用于生产许多类型的织物。在将纤维纺成纱线之前,需要从棉花中去除各种来源的污染物。污染物严重影响纱线的质量;任何异物都可能导致纱线或织物不合格,甚至导致生产机器损坏。自动检测和去除棉花中的外来纤维和污染物是现代纺织工业的一项重要技术。人们提出了各种图像处理和计算机视觉技术来检测棉纤维中的异物。我们描述了一种基于高斯混合模型和基于像素概率阈值的检测方法。该方法取得了令人满意的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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