A Systematic Review on the Detection and Classification of Plant Diseases Using Machine Learning

Deepkiran Munjal, Laxman Singh, Mrinal Pandey, S. Lakra
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引用次数: 4

Abstract

The occurrence of disease in plants might affect the crop production at a large scale, resulting into decline of the economic growth rate of the country. The disease in plants can be detected and treated at an early stage. Machine learning (ML), deep learning (DL), and computer vision-based techniques could play a pivotal role in detecting and classifying the diseases at an early stage. These approaches have even surpassed the human performance, as well as image processing based traditional approaches in the analysis and classification of plant diseases. Over the years, numerous authors have applied various image processing ML and DL techniques for the diagnosis of different ailments in plants that gives great hope to the farmers and landlords to cure the disease at an early stage. In this study, the authors addressed and evaluated the various currently existing state of art methods and techniques based on machine and deep learning. Besides, the authors have also focused on various limitations and challenges of these approaches that can explore greater possibly of these methods about their usability for disease detection in plants.
基于机器学习的植物病害检测与分类研究综述
植物病害的发生可能会大规模地影响作物生产,导致国家经济增长率的下降。植物病害可以在早期发现和治疗。机器学习(ML)、深度学习(DL)和基于计算机视觉的技术可以在早期发现和分类疾病方面发挥关键作用。这些方法在植物病害的分析和分类方面甚至超过了人类以及基于图像处理的传统方法。多年来,许多作者应用各种图像处理ML和DL技术来诊断植物的不同疾病,给农民和地主带来了早期治疗疾病的希望。在这项研究中,作者讨论并评估了基于机器和深度学习的各种现有的最先进的方法和技术。此外,作者还关注了这些方法的各种局限性和挑战,可以探索这些方法在植物病害检测方面的更大可能性。
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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