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Goat Leather Quality Classification Using Computer Vision and Machine Learning

机译:利用计算机视觉和机器学习进行山羊皮革质量分类

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Goat leather is responsible for a large part of the income generated by the most diverse clothing products, but the lack of modernization of some stages of leather production is still very evident, and may lead to divergent opinions regarding the quality of leather among tanning industries and finishing industries. In this paper it is proposed a new approach to aid goat leather qualification specialists based on the position of the found failures in the goat leather. There are two steps in the proposed approach. The first one is find the failure regions and the last one is extract some feature from the failure map founded. In this paper the authors use Gray Level Co-occurrence Matrix (GLCM), Local Binary Patterns (LBP) and Structural Co-occurrence Matrix (SCM) as feature extractors from leather images. The classification task is executed by k-Nearest Neighbors (KNN), Multi Layer Perceptron (MLP) and Support Vector Machine (SVM). The combination of the LBP attribute extractor with the MLP classifier has 90% accuracy rates for the classification of regions with failure, but for quality classification of the leather, the SVM classifier has the best results (86% of accuracy rate), also using LBP. The results show that the proposed approach can be used to aid the specialists to classify the quality of the goat leather.
机译:山羊皮革是大部分服装产品产生的大部分收入的来源,但是皮革生产某些阶段缺乏现代化仍然很明显,并且可能导致制革行业和皮革行业对皮革质量存在分歧。整理行业。本文根据山羊皮中发现的故障的位置,提出了一种新的方法来帮助山羊皮鉴定专家。提议的方法有两个步骤。第一个是找到故障区域,最后一个是从建立的故障图中提取一些特征。在本文中,作者使用灰度共生矩阵(GLCM),局部二元模式(LBP)和结构共生矩阵(SCM)作为皮革图像的特征提取器。分类任务由k最近邻(KNN),多层感知器(MLP)和支持向量机(SVM)执行。 LBP属性提取器与MLP分类器的结合可以对故障区域进行分类,准确率达到90%,但是对于皮革的质量分类,SVM分类器也可以使用LBP获得最好的结果(准确率达到86%)。 。结果表明,所提出的方法可用于帮助专家对山羊皮革的质量进行分类。

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