A review on the application of advanced soil and plant sensors in the agriculture sector

IF 7.7 1区 农林科学 Q1 AGRICULTURE, MULTIDISCIPLINARY Computers and Electronics in Agriculture Pub Date : 2024-08-28 DOI:10.1016/j.compag.2024.109385
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Abstract

Sensors implemented in agriculture play a significant role in soil and plant growth and enable real-time physical and chemical interactions in the environment, such as temperature, moisture/humidity, pH, and contaminant levels. Additionally, these sensors provide essential data that can enhance crop growth scenarios, resist biotic and abiotic stresses, and improve crop production. This article provides a thorough examination of the evolving landscape of agricultural sensor technologies, perspectives, and challenges in the field. Currently, some of the key soil sensors used in agricultural programs, include those that measure moisture, temperatures, pH, organic matter components, insects, and soil pollutants. On the other hand, nanobiotechnology sensors implement optical, wireless, or electrical signals to provide information about plant signaling molecules related to the conditions of agronomic equipment. We shed more light on the use of nanomaterial-facilitated transport of genetically encoded sensors as devices for the investigation and advancement of advanced plant sensors. Innovative technologies, including wireless sensor networks and plant wearables, are also addressed with regard to their potential for precision agriculture. The paper concludes by presenting future perspectives and difficulties in the fields of soil sensors and intelligent agriculture. In summary, we provide a comprehensive and forward-looking perspective on the potential of nanotechnology to facilitate the development of intelligent plant sensors. These sensors are capable of communicating with and controlling electrical equipment, with the aim of tracking and improving the output and resources applied to individual plants.

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先进土壤和植物传感器在农业领域的应用综述
农业中使用的传感器在土壤和植物生长中发挥着重要作用,可实时监测环境中的物理和化学相互作用,如温度、湿度、pH 值和污染物水平。此外,这些传感器提供的重要数据还能改善作物生长情况,抵御生物和非生物压力,提高作物产量。本文深入探讨了农业传感器技术不断发展的现状、前景以及该领域所面临的挑战。目前,农业项目中使用的一些关键土壤传感器包括测量水分、温度、pH 值、有机物成分、昆虫和土壤污染物的传感器。另一方面,纳米生物技术传感器利用光学、无线或电信号提供与农艺设备条件相关的植物信号分子信息。我们将进一步阐明如何利用纳米材料促进基因编码传感器的传输,将其作为研究和改进先进植物传感器的设备。此外,还探讨了包括无线传感器网络和植物可穿戴设备在内的创新技术在精准农业中的应用潜力。最后,本文介绍了土壤传感器和智能农业领域的未来前景和困难。总之,我们从全面和前瞻性的角度探讨了纳米技术促进智能植物传感器发展的潜力。这些传感器能够与电气设备通信并对其进行控制,目的是跟踪和改进单个植物的产出和资源应用。
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来源期刊
Computers and Electronics in Agriculture
Computers and Electronics in Agriculture 工程技术-计算机:跨学科应用
CiteScore
15.30
自引率
14.50%
发文量
800
审稿时长
62 days
期刊介绍: Computers and Electronics in Agriculture provides international coverage of advancements in computer hardware, software, electronic instrumentation, and control systems applied to agricultural challenges. Encompassing agronomy, horticulture, forestry, aquaculture, and animal farming, the journal publishes original papers, reviews, and applications notes. It explores the use of computers and electronics in plant or animal agricultural production, covering topics like agricultural soils, water, pests, controlled environments, and waste. The scope extends to on-farm post-harvest operations and relevant technologies, including artificial intelligence, sensors, machine vision, robotics, networking, and simulation modeling. Its companion journal, Smart Agricultural Technology, continues the focus on smart applications in production agriculture.
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