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CLASSIFICATION OF STRAWBERRY FRUIT SHAPE BY MACHINE LEARNING

机译:草莓果实形状的机器学习分类

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Shape is one of the most important traits of agricultural products due to its relationships with the quality, quantity, and value of the products. For strawberries, the nine types of fruit shape were defined and classified by humans based on the sampler patterns of the nine types. In this study, we tested the classification of strawberry shapes by machine learning in order to increase the accuracy of the classification, and we introduce the concept of computerization into this field. Four types of descriptors were extracted from the digital images of strawberries: (1) the Measured Values (MVs) including the length of the contour line, the area, the fruit length and width, and the fruit width/length ratio; (2) the Ellipse Similarity Index (ESI); (3) Elliptic Fourier Descriptors (EFDs), and (4) Chain Code Subtraction (CCS). We used these descriptors for the classification test along with the random forest approach, and eight of the nine shape types were classified with combinations of MVs?+?CCS?+?EFDs. CCS is a descriptor that adds human knowledge to the chain codes, and it showed higher robustness in classification than the other descriptors. Our results suggest machine learning's high ability to classify fruit shapes accurately. We will attempt to increase the classification accuracy and apply the machine learning methods to other plant species.
机译:由于形状与产品的质量,数量和价值之间的关系,形状是农产品最重要的特征之一。对于草莓,人类根据九种类型的采样器模式定义和分类了九种水果形状。在这项研究中,我们通过机器学习测试了草莓形状的分类,以提高分类的准确性,并将计算机化的概念引入该领域。从草莓的数字图像中提取了四种类型的描述符:(1)测量值(MVs),包括轮廓线的长度,面积,果实的长度和宽度以及果实的宽度/长度比; (2)椭圆相似指数(ESI); (3)椭圆傅立叶描述符(EFD),以及(4)链码减法(CCS)。我们将这些描述符与随机森林方法一起用于分类测试,并且在9种形状类型中的8种通过MVs +?CCS?+?EFDs的组合进行了分类。 CCS是一种将人类知识添加到链码的描述符,与其他描述符相比,CCS在分类中显示出更高的鲁棒性。我们的结果表明,机器学习对水果形状进行准确分类的能力很高。我们将尝试提高分类的准确性,并将机器学习方法应用于其他植物物种。

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