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Automated Visual Inspection System For Wood Defect Classification Using Computationalintelligence Techniques

机译:使用计算智能技术的木材缺陷分类自动外观检查系统

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This article presents improvements in the segmentation module, feature extraction module, and the classification module of a low-cost automated visual inspection (AVI) system for wood defect classification. One of the major drawbacks in the low-cost AVI system was the erroneous segmentation of clear wood regions as defects, which then introduces confusion in the classification module. To reduce this problem, we use the fuzzy min-max neural network for image segmentation (FMMIS). The FMMIS method grows boxes from a set of seed pixels, yielding ideally the minimum bounded rectangle for each defect present in the wood board image. Additional features with texture information are considered for the feature extraction module, and multi-class support vector machines are compared with multilayer perceptron neural networks in the classification module. Results using the FMMIS, additional features, and a pairwise classification support vector machine on a 550 test wood image set containing 11 defect categories show 91% of correct classification, which is significantly better than the original 75% of the low-cost AVI system. The use of computational intelligence techniques improved significantly the overall performance of the proposed automated visual inspection system for wood boards.
机译:本文介绍了用于木材缺陷分类的低成本自动视觉检查(AVI)系统的分割模块,特征提取模块和分类模块的改进。低成本AVI系统的主要缺点之一是错误地将清晰的木材区域分割为缺陷,从而在分类模块中造成混淆。为了减少此问题,我们使用模糊最小-最大神经网络进行图像分割(FMMIS)。 FMMIS方法从一组种子像素中生长出盒子,理想地为木板图像中存在的每个缺陷产生最小的边界矩形。特征提取模块考虑了带有纹理信息的其他特征,并且在分类模块中将多类支持向量机与多层感知器神经网络进行了比较。在包含11个缺陷类别的550个测试木材图像集上使用FMMIS,附加功能和成对分类支持向量机的结果显示正确分类的91%,这明显好于低成本AVI系统的原始75%。计算智能技术的使用大大改善了所建议的木板自动视觉检查系统的整体性能。

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