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New feature extraction method for classification of agricultural products from x-ray images

机译:来自X射线图像的农产品分类的新特点提取方法

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Classification of real-time x-ray images of randomly oriented touching pistachio nuts is discussed. The ultimate objective is the development of a system for automated non- invasive detection of defective product items on a conveyor belt. We discuss the extraction of new features that allow better discrimination between damaged and clean items. This feature extraction and classification stage is the new aspect of this paper; our new maximum representation and discrimination between damaged and clean items. This feature extraction and classification stage is the new aspect of this paper; our new maximum representation and discriminating feature (MRDF) extraction method computes nonlinear features that are used as inputs to a new modified k nearest neighbor classifier. In this work the MRDF is applied to standard features. The MRDF is robust to various probability distributions of the input class and is shown to provide good classification and new ROC data.
机译:讨论了随机定向触摸开心螺母的实时X射线图像的分类。最终目标是在传送带上的自动非侵入性检测的系统开发系统。我们讨论了新功能的提取,可以更好地歧视损坏和清洁物品。该特征提取和分类阶段是本文的新方面;我们的最大损坏和清洁物品之间的最大识别和歧视。该特征提取和分类阶段是本文的新方面;我们的新的最大表示和鉴别特征(MRDF)提取方法计算使用用作新修改的K最近邻分类的输入的非线性功能。在此工作中,MRDF应用于标准功能。 MRDF对输入类的各种概率分布稳健,并显示为提供良好的分类和新的ROC数据。

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