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基于深度学习的马铃薯块茎病害图像检测。

Using Deep Learning for Image-Based Potato Tuber Disease Detection.

机构信息

1 Department of Industrial Engineering and Management, Ben-Gurion University of the Negev, Beer Sheva, Israel.

2 Department of Software and Information Systems Engineering, Ben-Gurion University of the Negev, Beer Sheva, Israel; and.

出版信息

Phytopathology. 2019 Jun;109(6):1083-1087. doi: 10.1094/PHYTO-08-18-0288-R. Epub 2019 Apr 16.

Abstract

Many plant diseases have distinct visual symptoms, which can be used to identify and classify them correctly. This article presents a potato disease classification algorithm that leverages these distinct appearances and advances in computer vision made possible by deep learning. The algorithm uses a deep convolutional neural network, training it to classify the tubers into five classes: namely, four disease classes and a healthy potato class. The database of images used in this study, containing potato tubers of different cultivars, sizes, and diseases, was acquired, classified, and labeled manually by experts. The models were trained over different train-test splits to better understand the amount of image data needed to apply deep learning for such classification tasks. The models were tested over a data set of images taken using standard low-cost RGB (red, green, and blue) sensors and were tagged by experts, demonstrating high classification accuracy. This is the first article to report the successful implementation of deep convolutional networks, popular in object identification, to the task of disease identification in potato tubers, showing the potential of deep learning techniques in agricultural tasks.

摘要

许多植物病害具有明显的视觉症状,可以用于正确地识别和分类。本文提出了一种利用这些明显外观和深度学习带来的计算机视觉进步的马铃薯病害分类算法。该算法使用深度卷积神经网络,训练它将块茎分为五类:即四种病害类和一种健康马铃薯类。本研究使用的图像数据库包含不同品种、大小和病害的马铃薯块茎,由专家手动获取、分类和标记。模型在不同的训练-测试分割上进行训练,以更好地了解应用深度学习进行此类分类任务所需的图像数据量。模型在使用标准低成本 RGB(红、绿、蓝)传感器拍摄的图像数据集上进行了测试,并由专家进行了标记,展示了很高的分类准确性。这是第一篇成功地将在物体识别中广泛应用的深度卷积网络应用于马铃薯块茎病害识别任务的文章,展示了深度学习技术在农业任务中的潜力。

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