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Local Binary Patterns and Extreme Learning Machine based Texture Classification of Marbles

机译:基于局部二值模式和极限学习机的大理石纹理分类

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Separation of marbles into similar textures is a demanding and specialized process. In general, this process is carried out by experts. Marble plates with different textures to be placed in the same group is not a desirable status. This situation may lead to customer dissatisfaction in the sales process and post-sales. In this study, we propose a marble classification system using Local Binary Patterns (LBP) and Extreme Learning Machine (ELM). The dataset to be classified consists of real marble images collected from the private companies built in organized industrial zone of Elazig. For an effective performance evaluation, we held a comparison with Scale Invariant Feature Transform (SIFT) supported ELM and gave the results. Obtained performance values prove that proposed system is capable for classification of marble textures.
机译:将大理石分离成相似的纹理是一项艰巨而专业的过程。通常,此过程由专家执行。放置在同一组中的具有不同纹理的大理石板不是理想的状态。这种情况可能会导致客户对销售过程和售后不满意。在这项研究中,我们提出了一种使用局部二进制模式(LBP)和极限学习机(ELM)的大理石分类系统。要分类的数据集包括从在Elazig有组织的工业区中建立的私人公司收集的真实大理石图像。为了进行有效的性能评估,我们与支持尺度不变特征变换(SIFT)的ELM进行了比较,并给出了结果。获得的性能值证明,所提出的系统能够对大理石纹理进行分类。

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