A Survey on Deep Learning Techniques in Fruit Disease Detection

Somya Goel, Kavita Pandey
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引用次数: 1

Abstract

The improvement in computer vision techniques made the implementation of various agriculture related problems easy. One such problem is fruit disease detection. There has been enormous research on different fruits like the apple, mango, olive, kiwi, orange, passion fruit, and others using deep learning techniques. This article summarizes the major contributions of this field over past few years. As per the authors' knowledge, there is no survey paper specifically on fruit disease detection using deep learning techniques. The technical analysis of deep learning techniques to predict diseases in fruits have been done in this article. The study also presents a comparative study of image acquisition, image pre-processing, and segmentation techniques along with the deep learning models used. The study concluded the fact that the best fit deep learning model can be different depending on the computation power of the system and the data used. Directions of future research have also been discussed in the article.
深度学习技术在水果病害检测中的研究进展
计算机视觉技术的进步使各种农业相关问题的实现变得容易。其中一个问题是水果病害检测。人们对不同的水果进行了大量的研究,比如苹果、芒果、橄榄、猕猴桃、橙子、百香果,以及其他使用深度学习技术的水果。本文总结了近年来该领域的主要贡献。据作者所知,目前还没有专门研究利用深度学习技术检测水果病害的调查论文。本文对深度学习技术在水果病害预测中的应用进行了技术分析。该研究还对图像采集、图像预处理和分割技术以及所使用的深度学习模型进行了比较研究。该研究得出结论,根据系统的计算能力和使用的数据,最佳拟合深度学习模型可能会有所不同。并对今后的研究方向进行了展望。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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