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基于人工智能的绿色技术实现模拟以实现碳中和:探索补贴和知识管理的作用。

AI-based green technology implementation simulation for achieving carbon neutrality: exploring the role of subsidies and knowledge management.

机构信息

School of Economics and Management, Harbin Institute of Technology, Shenzhen, China.

Institute of Agricultural & Resource Economics, University of Agriculture Faisalabad, Faisalabad, Pakistan.

出版信息

Environ Sci Pollut Res Int. 2024 Oct;31(47):57685-57700. doi: 10.1007/s11356-024-34966-4. Epub 2024 Sep 17.

Abstract

This study investigates the role of green technology implementation (GTI) based on artificial intelligence (AI) at the household level to achieve carbon neutrality by addressing gaps in the existing research. The research focuses on understanding how education on green consumption preferences, green invention and emission impacts can optimally influence AI-based GTI decisions. Through behavioural analysis at the household level, this study quantifies the effects of education and preferences on emissions and proposes subsidies as accelerators for carbon-neutral transitions. Furthermore, the study employs regression analysis and simulation-based optimisation, which are then validated against prior methodologies, with a focus on Punjab, Pakistan. Utilising a simple random sampling technique, approximately 1000 households were surveyed to represent the province's diverse demographics comprehensively. Findings reveal that higher education levels correlate with less enthusiasm for AI-based GTI. Simulations measured optimal subsidy levels by striking a balance between encouraging green behaviour and technological adoption. By integrating diverse factors and AI-based GTI optimisation, this study defines important thresholds for education and subsidies, thus highlighting their pivotal role in advancing AI-based green technologies and sustainable household practices. This research significantly enhances the understanding of the complex relationship between AI-based GTI decisions and educational influences, thereby contributing to the advancement of environmental sustainability.

摘要

本研究通过解决现有研究中的空白,调查了基于人工智能(AI)的绿色技术实施(GTI)在家庭层面实现碳中和的作用。研究重点在于理解如何通过绿色消费偏好、绿色发明和排放影响教育来优化影响基于 AI 的 GTI 决策。通过家庭层面的行为分析,本研究量化了教育和偏好对排放的影响,并提出补贴作为碳中性转型的加速手段。此外,该研究采用回归分析和基于模拟的优化,并针对旁遮普省(巴基斯坦)进行了验证,同时使用简单随机抽样技术对约 1000 户家庭进行了调查,以全面代表该省的多样化人口。研究结果表明,较高的教育水平与对基于 AI 的 GTI 的热情较低相关。模拟通过在鼓励绿色行为和技术采用之间取得平衡来衡量最佳补贴水平。通过整合不同的因素和基于 AI 的 GTI 优化,本研究确定了教育和补贴的重要阈值,从而强调了它们在推进基于 AI 的绿色技术和可持续家庭实践方面的关键作用。本研究大大增强了对基于 AI 的 GTI 决策和教育影响之间复杂关系的理解,从而为环境可持续性的推进做出了贡献。

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