智能农业中的人工智能:应用与挑战

Q3 Agricultural and Biological Sciences
None Nitin, Satinder Bal Gupta
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引用次数: 0

摘要

人工智能被归类为计算机科学的一个子领域,其中机器在数据和静态方法的帮助下执行智能学习任务。农业是人类最古老的社会活动之一。它提供了许多重要的东西,比如原材料、食物和就业。由于人口不断增加,农业部门增加资源生产以满足实际需求是当务之急。许多农艺因素,如杂草、害虫、水分状况和可用性以及气候条件都会影响总产量。目前,农民使用的管理方法是传统的,不足以满足日益增长的需求。为了满足未来的需求,需要采用新的创新农业方法。智能农场监测中的人工智能技术可以提高产量的质量和数量。本文调查了人工智能在农业中的不同应用领域。人工智能使农民能够访问与农场相关的数据和分析方法,从而促进更好的农艺,减少浪费,并在对环境影响最小的情况下提高效率。讨论了使农业比以前的形式更智能的各种人工智能技术。本文对智能农业中各种人工智能技术的实现进行了研究。这项研究的目的是介绍不同的关键应用和相关的挑战,以开辟新的未来机会。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Artificial Intelligence in Smart Agriculture: Applications and Challenges
Artificial intelligence has been categorized as a subfield of computer science wherein machines perform smart learning tasks with the help of data and statical methods. Agriculture is one of the oldest social activities performed by humans. It provides many crucial things like raw materials, food, and employment. Due to the increasing population, it is the need of the hour that the agriculture sector should increase production of resources to match actual demand. Many agronomic factors such as weeds, pests, water condition and availability, and climate conditions impact overall yield. At present, methods used by farmers for management are traditional and insufficient to meet increased demand. To match future demand, new innovative agriculture methos need to be adopted. Artificial intelligence techniques in smart farm monitoring can enhance the quality and quantity of yield. This paper surveys different areas in agriculture where artificial intelligence is applicable. Artificial intelligence enables farmers to access farm-related data and analytical methods that will foster better agronomy, reduce waste, and improve efficiencies with minimum environmental impact. Various artificial intelligence techniques that make agriculture smarter than its previous forms are discussed. In this paper, the implementation of various artificial intelligence techniques in smart agriculture is studied. The aim of this study is to present different key applications and associated challenges to open up new future opportunities.
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来源期刊
Current Applied Science and Technology
Current Applied Science and Technology Agricultural and Biological Sciences-Agricultural and Biological Sciences (miscellaneous)
CiteScore
1.50
自引率
0.00%
发文量
51
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