AI Algorithms in the Agrifood Industry: Application Potential in the Spanish Agrifood Context

计算机科学 背景(考古学) 历史 考古
作者
Javier Marcos Arévalo,Francisco Javier Flor Montalvo,Juan‐Ignacio Latorre‐Biel,Rubén Tino-Ramos,E. Martínez,Julio Blanco‐Fernández
出处
期刊:Applied sciences [Multidisciplinary Digital Publishing Institute]
卷期号:15 (4): 2096-2096 被引量:4
标识
DOI:10.3390/app15042096
摘要

This research explores the prospective implementations of artificial intelligence (AI) algorithms within the agrifood sector, focusing on the Spanish context. AI methodologies, encompassing machine learning, deep learning, and neural networks, are increasingly integrated into various agrifood sectors, including precision farming, crop yield forecasting, disease diagnosis, and resource management. Utilizing a comprehensive bibliometric analysis of scientific literature from 2020 to 2024, this research outlines the increasing incorporation of AI in Spain and identifies the prevailing trends and obstacles associated with it in the agrifood industry. The findings underscore the extensive application of AI in remote sensing, water management, and environmental sustainability. These areas are particularly pertinent to Spain’s diverse agricultural landscapes. Additionally, the study conducts a comparative analysis between Spain and global research outputs, highlighting its distinctive contributions and the unique challenges encountered within its agricultural sector. Despite the considerable opportunities presented by these technologies, the research identifies key limitations, including the need for enhanced digital infrastructure, improved data integration, and increased accessibility for smaller agricultural enterprises. The paper also outlines future research pathways aimed at facilitating the integration of AI in Spain’s agriculture. It addresses cost-effective solutions, data-sharing frameworks, and the ethical and societal implications inherent to AI deployment.
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