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A REVIEW OF ARTIFICIAL INTELLIGENCE BASED BUILDING ENERGY PREDICTION WITH A FOCUS ON ENSEMBLE PREDICTION MODELS

机译:基于人工智能的建筑能量预测综述综述集合预测模型

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Building energy usage prediction plays an important role in building energy management and conservation. Building energy prediction contributes significantly in global energy saving as it can help us to evaluate the building energy efficiency; to conduct building commissioning; and detect and diagnose building system faults. AI based methods are popular owing to its ease of use and high level of accuracy. This paper proposes a detailed review of AI based building energy prediction methods particularly, multiple linear regression, Artificial Neural Networks, and Support Vector Regression. In addition to the previously listed methods, this paper will focus on ensemble prediction models used for building energy prediction. Ensemble models improve the prediction accuracy by integrating several prediction models. The principles, applications, advantages, and limitations of these AI based methods are elaborated in this paper. Additionally, future directions of the research on AI based building energy prediction methods are discussed.
机译:建设能源使用预测在建设能源管理和保护方面发挥着重要作用。建筑能量预测在全球节能方面有助于,因为它可以帮助我们评估建筑能效;进行建筑调试;并检测和诊断构建系统故障。由于其易用性和高度的准确度,基于AI的方法很受欢迎。本文提出了对基于AI的建筑能量预测方法的详细述评,特别是多个线性回归,人工神经网络和支持向量回归。除了先前列出的方法外,本文还将专注于用于构建能量预测的集合预测模型。集合模型通过集成若干预测模型来提高预测精度。本文阐述了这些AI基于方法的原理,应用,优点和局限性。另外,讨论了基于AI的建筑能量预测方法的未来研究。

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