International Journal of Advanced Multidisciplinary Research and Studies
Volume 4, Issue 6, 2024
Predictive AI Models for Maintenance Forecasting and Energy Optimization in Smart Housing Infrastructure
Author(s): Tosin Samuel Oyetunji, Fasasi Lanre Erinjogunola, Rasheed O Ajirotutu, Abiodun Benedict Adeyemi, Tochi Chimaobi Ohakawa, Saliu Alani Adio
DOI: https://doi.org/10.62225/2583049X.2024.4.6.3995
Abstract:
The rapid advancement of artificial intelligence (AI) offers transformative potential for the management of smart housing infrastructure, particularly in the realms of predictive maintenance forecasting and energy optimization. This paper explores the integration of AI-driven models to enhance housing management by reducing maintenance costs, improving operational efficiency, and fostering sustainability. By leveraging predictive analytics, AI models can forecast equipment failures before they occur, thereby minimizing downtime and the costs associated with unplanned repairs. In addition, energy optimization through AI algorithms helps reduce utility consumption by adjusting energy usage based on real-time data from smart devices and occupancy patterns. This paper presents a comprehensive analysis of AI’s role in the future of housing infrastructure, offering theoretical insights, technological frameworks, and practical applications. Pilot implementations and case studies illustrate the success of these models in real-world settings, demonstrating improvements in both energy efficiency and maintenance outcomes. Key challenges identified include data quality, system integration, and the high initial costs of adoption. The paper concludes with policy recommendations for fostering AI adoption in smart housing, highlighting the need for regulatory frameworks, financial incentives, and workforce training to ensure broad-scale implementation. This study contributes valuable insights into how AI can shape the future of housing, providing a pathway for more sustainable, efficient, and cost-effective housing management.
Keywords: Predictive AI, Smart Housing Infrastructure, Maintenance Forecasting, Energy Optimization, Sustainability
Pages: 1372-1380
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