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A review of artificial intelligence based building energy use prediction: Contrasting the capabilities of single and ensemble prediction models

机译:基于人工智能的建筑能耗预测的综述:单一和整体预测模型的功能对比

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Building energy use prediction plays an important role in building energy management and conservation as it can help us to evaluate building energy efficiency, conduct building commissioning, and detect and diagnose building system faults. Building energy prediction can be broadly classified into engineering, Artificial Intelligence (AI) based, and hybrid approaches. While engineering and hybrid approaches use thermodynamic equations to estimate energy use, the AI-based approach uses historical data to predict future energy use under constraints. Owing to the ease of use and adaptability to seek optimal solutions in a rapid manner, the AI-based approach has gained popularity in recent years. For this reason and to discuss recent developments in the AI based approaches for building energy use prediction, this paper conducts an in-depth review of single AI-based methods such as multiple linear regression, artificial neural networks, and support vector regression, and ensemble prediction method that, by combining multiple single AI-based prediction models improves the prediction accuracy manifold. This paper elaborates the principles, applications, advantages and limitations of these AI-based prediction methods and concludes with a discussion on the future directions of the research on AI-based methods for building energy use prediction.
机译:建筑能耗预测在建筑能耗管理和节约中起着重要作用,因为它可以帮助我们评估建筑能耗,进行建筑调试以及检测和诊断建筑系统故障。建筑能耗预测可大致分为工程,基于人工智能(AI)和混合方法。工程和混合方法使用热力学方程式估算能源使用量,而基于AI的方法使用历史数据来预测约束条件下的未来能源使用量。由于易于使用和适应性快速寻找最佳解决方案,近年来,基于AI的方法越来越受欢迎。因此,为了讨论基于AI的建筑能耗预测方法的最新发展,本文对基于AI的单一方法进行了深入的综述,如多元线性回归,人工神经网络,支持向量回归和集成预测方法,通过组合多个基于AI的单个预测模型,可以提高预测精度。本文详细阐述了这些基于AI的预测方法的原理,应用,优点和局限性,并在最后讨论了基于AI的建筑能耗预测方法研究的未来方向。

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