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Classification and Quality Evaluation of ginned cotton based on color image fusion technique

机译:基于彩色图像融合技术的轧花棉花的分类与质量评价

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Ginned cotton's quality is one significant factor to evaluate the cotton grade and influence the yarn qualities. Ginned cotton is always mixed with contaminants during picking, storing, drying, transporting, purchasing, and processing. Manual evaluation is time consuming, labor intensive, and unreliable. This paper proposed a fast feature extraction algorithm is presented for the measurement of cotton defects in ginned cotton within a complex background. The edge of cotton defects are extracted from fusion of three channel image of color image. A criterion based on areas is proposed to achieve fast morphological analysis. The different defects can be inspected automatically based on different thresholds. The comparison experiments between measuring system and technician were done and analyzed. The costing time of measuring system was less than 30 seconds, and accuracy was 89.5%. The measuring results show the method can meet with the requirement of grade determination of ginned cottons.
机译:轧花棉的质量是评估棉质等级并影响纱线质量的重要因素之一。轧花棉在拾取,存储,干燥,运输,购买和加工期间总是与污染物混合。手动评估非常耗时,费力且不可靠。提出了一种在复杂背景下测量轧花棉花缺陷的快速特征提取算法。棉花缺陷的边缘是从彩色图像的三通道图像融合中提取的。提出了一种基于面积的判据,以实现快速的形态分析。可以根据不同的阈值自动检查不同的缺陷。完成并分析了测量系统与技术人员的对比实验。测量系统的成本时间少于30秒,准确度为89.5%。测量结果表明,该方法可以满足轧花棉分级的要求。

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