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QUALITY ASSESSMENT OF GRAIN SAMPLES USING COLOR IMAGE ANALYSIS

机译:使用彩色图像分析谷物样品的质量评估

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摘要

Grain quality is assessed on the basis of different characteristics like appearance, shape, color, infections, presence of impurities etc. Most of these characteristics are assessed by an expert using visual estimation. In this paper, an approach for objective estimation of some basic grain quality characteristics based on color image analysis of the investigated objects is presented. Methods and tools for feature extraction and for object description, as well as for object classification into preliminary defined groups are proposed. Three classification procedures based on radial basis elements are presented. The possibility of using them to solve different classification problems is analysed and its training and validation accuracy is assessed. The results from the validation procedure give opportunity to choose appropriate data model, classifier and some of classifier parameters for specific classification task. Results from the classification of maize grain samples, which include objects from 9 classes with different color characteristics and 4 classes with different shape are presented. The final classification of the objects is performed in 3 normative classes by fusing the data from color characteristics and shape classification.
机译:基于外观,形状,颜色,感染,杂质存在的不同特征评估谷物质量等的基础上评估大多数这些特征是通过使用视觉估计的专家评估的大部分。本文提出了一种基于研究对象的彩色图像分析的一些基本晶粒质量特征的客观估计方法。提出了特征提取的方法和工具和对象描述,以及对象分类,以初始定义的组。提出了基于径向基因元素的三个分类程序。分析了使用它们来解决不同分类问题的可能性,并评估其训练和验证精度。验证程序的结果为特定分类任务提供了选择适当的数据模型,分类器和一些分类器参数的机会。玉米谷物样品分类结果,其中包括来自9个具有不同颜色特性的物体和具有不同形状的4个等级。通过从颜色特性和形状分类融合数据,在3个规范类别中执行对象的最终分类。

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