Ai-driven innovations in greenhouse agriculture: Reanalysis of sustainability and energy efficiency impacts

持续性 农业 温室 自然资源经济学 环境科学 温室气体 高效能源利用 能量(信号处理) 农业工程 农业经济学 环境经济学 业务 经济 工程类 农学 地理 数学 生态学 统计 电气工程 考古 生物
作者
Siamak Hoseinzadeh,Davide Astiaso Garcia
出处
期刊:Energy Conversion And Management: X [Elsevier BV]
卷期号:24: 100701-100701 被引量:10
标识
DOI:10.1016/j.ecmx.2024.100701
摘要

In the context of greenhouse agriculture, the integration of Artificial Intelligence (AI) is evaluated for its potential to enhance sustainability and crop production efficiency.This study reanalyzes publicly available datasets, using advanced time series analysis and noise reduction techniques through seasonality detection and removal.This novel approach reveals trends more clearly, providing a detailed comparison between AI-driven methods and traditional agricultural practices.An extensive review of literature on AI applications in agriculture is conducted to establish a broad understanding of its current state and future prospects.The core focus is the Autonomous Greenhouses Challenge, an initiative where research teams apply AI technologies in real-world greenhouse settings.This challenge offers crucial data for a thorough assessment of AI's practical impact.The analysis reveals that AI significantly reduces heating energy consumption, indicating a notable improvement in energy efficiency.However, reductions in CO 2 emissions, along with improvements in electricity and water usage, are only marginal when compared to traditional farming methods.Similarly, enhancements in crop quality and profitability achieved through AI are found to be on par with conventional techniques.These findings highlight the dual nature of AI's impact in greenhouse agriculture: it shows significant promise in some areas, while its effectiveness in other key sustainability aspects remains limited.The study emphasizes the need for further research and investment in technological advancements, as well as the importance of a robust data infrastructure.It also highlights the necessity of education and training in AI technologies for effective implementation in the agricultural sector.The results of this research aim to inform policymakers, researchers, and industry stakeholders about the mixed impacts of AI on sustainable greenhouse farming.By offering a comprehensive evaluation of the benefits and challenges of AI integration, this study contributes to the ongoing discussion on sustainable agricultural practices and provides insights into the future direction of AI in this field.

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