Classification of Multiple Panamanian Watermelon Varieties Using Convolutional Neural Networks with Transfer Learning

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Abstract

Panama is well regarded as an international exporter of watermelon in the Central American region. Most of the watermelon selection process is made by hand with empirical techniques, based on firmness, color, sound and random sampling from other specimens of the same batch. The overall goal of the project is to have an automated system able to distinguish between watermelon varieties and that is able to classify watermelons that are ready for export or can be sold locally. For this matter, traditional and novel computer vision and spectral pattern recognition algorithms are used.
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基于迁移学习的卷积神经网络在巴拿马西瓜品种分类中的应用
巴拿马是中美洲地区公认的国际西瓜出口国。大多数西瓜的选择过程都是用经验技术手工制作的,基于硬度、颜色、声音和从同一批的其他样品中随机取样。该项目的总体目标是建立一个能够区分西瓜品种的自动化系统,并能够对准备出口或可以在当地销售的西瓜进行分类。为此,采用了传统的和新型的计算机视觉和光谱模式识别算法。
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