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Testing the Limits of Detection of the 'Orange Skin' Defect in Furniture Elements with the HOG Features

机译:用猪特征测试家具元素中“橙色皮肤”缺陷的限制

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In principle, the orange skin surface defect can be successfully detected with the use of a set of relatively simple image processing techniques. To assess the technical possibilities of classifying relatively small surfaces the Histogram of Oriented Gradients (HOG) and the Support Vector Machine were used for two sets of about 400 surface patches in each. Color, grey and binarized images were used in tests. For grey images the worst classification accuracy was 91% and for binarized images it was 99%. For color image the results were generally worse. The experiments have shown that the cell size in the HOG feature extractor should be not more than 4 by 4 pixels which corresponds to 0.12 by 0.12 mm on the object surface.
机译:原则上,可以通过使用一组相对简单的图像处理技术来成功检测橙色皮肤表面缺陷。为了评估分类相对小表面的技术可能性,取向梯度(HOG)和支撑载体机的直方图用于各自的两组约400个表面贴片。在测试中使用颜色,灰色和二金属化图像。对于灰色图像,最糟糕的分类准确性为91%,二值化图像为99%。对于彩色图像,结果通常更糟糕。实验表明,猪特征提取器中的电池尺寸应不大于4×4像素,其对应于物体表面上的0.12×0.12mm。

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