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Stem and calyx recognition on 'Jonagold' apples by pattern recognition

机译:模式识别在“乔纳金”苹果上的茎和花萼识别

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摘要

In this paper, a novel method to recognize stem or calyx regions of 'Jonagold' apples by pattern recognition is proposed. The method starts with background removal and object segmentation by thresholding. Statistical, textural and shape features are extracted from each segmented object and these features are introduced to several supervised classification algorithms. Linear discriminant, nearest neighbor, fuzzy nearest neighbor, support vector machines classifiers and adaboost are the ones tested. Relevant features are selected by floating forward feature selection algorithm. Support vector machines, which is found to be the best among all classification algorithms tested, correctly recognized 99% of the stems and 100% of the calyxes using selected feature subset. These results exhibit considerable improvement relative to the ones introduced in the literature.
机译:本文提出了一种通过模式识别来识别“乔纳金”苹果茎或花萼区域的新方法。该方法从背景去除和通过阈值分割对象开始。从每个分割的对象中提取统计,纹理和形状特征,并将这些特征引入几种监督分类算法中。测试了线性判别,最近邻,模糊最近邻,支持向量机分类器和adaboost。通过浮动前向特征选择算法选择相关特征。支持向量机在所有测试的分类算法中被认为是最好的,它使用选定的特征子集正确识别了99%的茎和100%的花萼。相对于文献中介绍的结果,这些结果显示出相当大的改进。

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