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LIMESTONE LITHOLOGICAL CLASSIFICATION, USING IMAGE PROCESSING AND PATTERN RECOGNITION TECHNIQUE

机译:石灰石岩性分类,使用图像处理和模式识别技术

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Image processing is a technique that simulates the human vision system. This technique enables applying every statistical or intelligent operation to recognize differences. In this way this new technique is used in quality control systems in most industries. Studying sedimentary rocks is very important from the economic point of view. Some units of sedimentary sequences involve different mineral deposits, hydrocarbon and water resources. Therefore it is important to identify and classify different sedimentary rocks. Descriptive classification of sedimentary rocks is usually based on visual and textural features and chemical composition of a sample. In this paper different samples of a limestone mine in central part of Iran are classified. The samples were collected from different parts of the mine and crushed down in size from 2.58 cm to 3.58 cm. The rock samples were labeled based on percentage of chemical and lithological compositions. Each sample was assigned to one of the distinguished groups. The images of the samples were taken in appropriate environment and processed. A total of 74 features were extracted from the identified rock samples in all images. In order to feature dimensional decrease, principal component analysis method was used. Then Bayesian statistical algorithm was used as a useful tool for classification. Classification Correctness Rate (CCR), calculated for the test data sets are %88, %68, %61 and %72 for the first to fourth class respectively. Therefore it can be inferred that the extracted features of images are appropriate indicators for different samples identification. These precise results besides the advantages of image processing technique, which are increasing speed of operation and decreasing cost, appears to be a desirable success.
机译:图像处理是一种模拟人类视觉系统的技术。该技术使得能够应用每个统计或智能操作来识别差异。通过这种方式,这种新技术在大多数行业的质量控制系统中使用。从经济角度来看,研究沉积岩非常重要。一些沉积序列单元涉及不同的矿物沉积物,烃和水资源。因此,重要的是识别和分类不同的沉积岩。沉积岩的描述性分类通常基于样品的视觉和纹理特征和化学成分。在本文中,伊朗中部的石灰石矿的不同样品分类。从矿井的不同部位收集样品,并以2.58厘米至3.58厘米的尺寸粉碎。基于化学和岩性组合物的百分比标记岩石样品。将每个样本分配给其中一个杰出的组。在适当的环境中取样图像并加工。从所有图像中的识别的岩石样本中提取了总共74个特征。为了特征尺寸减小,使用了主要成分分析方法。然后贝叶斯统计算法用作分类的有用工具。对于测试数据集计算的分类正确性率(CCR)分别计算为第一至第四类的%88,%68,%61和%72。因此,可以推断出图像的提取特征是不同样本识别的适当指标。这些精确的结果除了图像处理技术的优点之外,这是越来越多的运行速度和降低成本,似乎是一种理想的成功。

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