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Image-based processing for ripeness classification of oil palm fruit

机译:基于图像的油棕果实分类处理

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摘要

Palm fruit is the result of agriculture products that processed into vegetable oil. Nowadays, there are many daily necessities are produced from palm fruit which cause demand for palm oil will increase sharply in the future. Therefore, image-based automation systems related to fruit ripeness classification continue to be developed to support the increasing result of production. In this paper, the classification method of palm fruit is aimed to distinguish three classes of fruit ripeness, namely raw, under-ripe, and ripe. The focus of this work starts from the segmentation process by applying the thresholding using the Otsu method. Following this, the color extraction features were employed by calculating two kind features, including the mean and standard deviation based on four-color components: red, green, blue, and gray, hence there are eight features produced. Lastly, classification is applied using the support vector machines method. This method was tested using160 images with the successful rate indicated by an accuracy value of 92.5%.
机译:棕榈果是农业产品加工成植物油的结果。如今,有许多日用品是由棕榈果生产的,这导致棕榈油需求将来会急剧增加。因此,继续开发与果实成熟分类相关的基于图像的自动化系统,以支持越来越越来越多的生产结果。在本文中,棕榈果的分类方法旨在区分三类果实成熟,即生成熟和成熟。通过使用OTSU方法应用阈值处理,本工作的重点从分段过程开始。在此之后,通过计算两种特征来使用颜色提取功能,包括基于四色组件的平均值和标准偏差:红色,绿色,蓝色和灰色,因此产生了八个功能。最后,使用支持向量机方法应用分类。使用成功率的160图像测试该方法,其精度值为92.5%。

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