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Lettuce images features extraction and intelligent classification of growth period

机译:生菜图像特征提取和生长期智能分类

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摘要

Classification of lettuce growth peroid is the premise of records of lettuce growth information. In this study, lettuce images in every growth period are collected. And visible images are preprocessed to extract features to establish initial feature library of lettuce images. Through R cluster analysis on many features, good image eigenvector are obtained. Classification of the lettuce samples are obtained by modeling and analysis of the neural networks. The experimental classification results compared with practical classification results, the recognition accuracy is up to 88.4%‥
机译:生菜生长周期的分类是记录生菜生长信息的前提。在这项研究中,收集每个生长期的生菜图像。并对可见图像进行预处理以提取特征,以建立生菜图像的初始特征库。通过对许多特征进行聚类分析,可以获得良好的图像特征向量。通过对神经网络进行建模和分析,可以获得生菜样品的分类。实验分类结果与实际分类结果相比,识别准确率高达88.4%‥

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