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An Asbestos Counting Method from Microscope Images of Building Materials Using Summation Kernel of Color and Shape

机译:使用总结核的显微镜图像从显微镜图像的显微镜图像计算方法

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In this paper, an asbestos counting method from microscope images of building materials is proposed. Since asbestos particles have unique color and shape, we use color and shape features for detecting and counting asbestos by computer. To classify asbestos and other particles, the Support Vector Machine (SVM) is used. When one kernel is applied to a feature vector which consists of color and shape, the similarity of each feature is not used effectively. Thus, kernels are applied to color and shape independently, and the summation kernel of color and shape is used. We confirm that the accuracy of asbestos detection is improved by using the summation kernel.
机译:本文提出了一种来自建筑材料显微镜图像的石棉计数方法。由于石棉颗粒具有独特的颜色和形状,因此我们使用颜色和形状特征来通过计算机检测和计数石棉。为了对石棉和其他粒子进行分类,使用支持向量机(SVM)。当一个内核应用于由颜色和形状组成的特征向量时,不会有效地使用每个特征的相似性。因此,晶粒被独立地应用于颜色和形状,并且使用了颜色和形状的求和核。我们确认通过使用求和内核来提高石棉检测的准确性。

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