植物传染病深度学习预测技术综述

G. B, S. B. V., Vishveshvaran R
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引用次数: 0

摘要

印度经济严重依赖农业,农业也是农作物生产的重要来源。印度相当一部分人口的生计依赖于产量生产。与农业有关的问题是当今社会关注的首要问题。农业增长的主要挑战是需要保持植物和作物的健康。一个对人们的生活和经济状况有重大影响的行业是农业。管理不善导致农产品损失。最脆弱的植物叶子最先表现出生病的症状。事实证明,使用设备预测疾病比农民传统的人工观察方法更快、更便宜、更可靠。大多数情况下,疾病症状可以在叶子、茎和果实上看到。农作物的产量受到许多因素的影响。气候变化、虫害和许多植物病害是其中的一些原因。自动检测系统的目的是在疾病出现或进展时发现疾病迹象。本文提出了一种基于深度学习和图像处理的叶片病害检测方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Survey on Deep Learning Prediction Techniques for Plant Contagion
India's economy is heavily reliant on agriculture, which is also a significant source of crop production. The livelihood of a sizable portion of India's population depends on yield production. Agriculture-related problems are a current primary concern in the modern era. The primary challenge for agricultural growth is the need to maintain the wellbeing of the plants and the crops. One industry that significantly affects people's lives and the state of the economy is agriculture. Poor management leads to the loss of agricultural products. The most delicate plant leaves are the first to show symptoms of sickness. The use of equipment to anticipate disease has proven to be quicker, less expensive, and more reliable than farmers' traditional method of manual observation. Most often, disease symptoms are visible on the leaves, stems, and fruits. The crop's productivity is impacted by a number of factors. Climate change, insect infestations, and numerous plant diseases are some of the contributing reasons. An automatic detection system is intended to pick up illness signs as they emerge or progress. In the paper, a method for using deep learning and image processing to detect illnesses in leaves is revealed.
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