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利用预训练的 VGG16 和 MSVM 对茄子进行疾病分类。

Disease Classification in Eggplant Using Pre-trained VGG16 and MSVM.

机构信息

School of Mechanical Engineering, SASTRA Deemed University, Thanjavur, 613401, India.

出版信息

Sci Rep. 2020 Feb 11;10(1):2322. doi: 10.1038/s41598-020-59108-x.

Abstract

Currently, the application of deep learning in crop disease classification is one of the active areas of research for which an image dataset is required. Eggplant (Solanum melongena) is one of the important crops, but it is susceptible to serious diseases which hinder its production. Surprisingly, so far no dataset is available for the diseases in this crop. The unavailability of the dataset for these diseases motivated the authors to create a standard dataset in laboratory and field conditions for five major diseases. Pre-trained Visual Geometry Group 16 (VGG16) architecture has been used and the images have been converted to other color spaces namely Hue Saturation Value (HSV), YCbCr and grayscale for evaluation. Results show that the dataset created with RGB and YCbCr images in field condition was promising with a classification accuracy of 99.4%. The dataset also has been evaluated with other popular architectures and compared. In addition, VGG16 has been used as feature extractor from 8 convolution layer and these features have been used for classifying diseases employing Multi-Class Support Vector Machine (MSVM). The analysis depicted an equivalent or in some cases produced better accuracy. Possible reasons for variation in interclass accuracy and future direction have been discussed.

摘要

目前,深度学习在作物病害分类中的应用是研究的活跃领域之一,需要一个图像数据集。茄子(Solanum melongena)是一种重要的作物,但它容易受到严重病害的影响,阻碍其生产。令人惊讶的是,到目前为止,还没有针对这种作物病害的数据集。由于缺乏这些病害的数据集,作者在实验室和田间条件下为五种主要病害创建了一个标准数据集。使用了预先训练的视觉几何组 16(VGG16)架构,并将图像转换为其他颜色空间,即色调饱和度值(HSV)、YCbCr 和灰度,以进行评估。结果表明,在田间条件下使用 RGB 和 YCbCr 图像创建的数据集具有很高的分类准确率(99.4%)。该数据集还与其他流行的架构进行了评估和比较。此外,还使用 VGG16 作为 8 个卷积层的特征提取器,并使用多类支持向量机(MSVM)对这些特征进行分类。分析表明,在某些情况下,这些特征的准确性相当或甚至更好。讨论了类间准确率变化的可能原因和未来的发展方向。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e4ca/7012888/e37a11b2d6b5/41598_2020_59108_Fig1_HTML.jpg

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