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Data science for building energy efficiency: A comprehensive text-mining driven review of scientific literature

机译:建筑能源效率的数据科学:科学文学的全面挖掘驱动审查

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The ever-changing data science landscape is fueling innovation in the built environment context by providing new and more effective means of converting large raw data sets into value for professionals in the design, construction and operations of buildings. The literature developed due to this convergence has rapidly increased in recent years, making it difficult for traditional review approaches to cover all related papers. Therefore, this paper applies a natural language processing (NLP) method to provide an exhaustive and quantitative review.Approximately 30,000 scientific publications were retrieved from the Elsevier API to extract the relationship between data sources, data science techniques, and building energy efficiency applications across the life cycle of buildings. The text-mining and NLP analysis reveals that data sciences techniques are applied more for operation phase applications such as fault detection and diagnosis (FDD), while being under-explored in design and commissioning phases. In addition, it is pointed out that more data science techniques that are to be investigated for various applications. For example, generative adversarial networks (GANs) has potential in facilitating parametric design; transfer learning is a promising path to promoting the application of optimal building operation;(c) 2021 Elsevier B.V. All rights reserved.
机译:不断变化的数据科学景观在建立的环境环境中,通过提供新的和更有效的手段,将大型原始数据集转换为建筑物的设计,构建和运营中的专业人士的价值,更有效地加强了建筑环境上下文中的创新。近年来,由于这种收敛而发展的文献迅速增加,使传统审查方法难以涵盖所有相关文件。因此,本文应用自然语言处理(NLP)方法,以提供详尽的和定量评论。从ELSEVIER API检索了30,000个科学出版物,以提取数据源,数据科学技术与构建能效应用之间的关系建筑物的生命周期。文本挖掘和NLP分析显示,对于操作阶段应用,诸如故障检测和诊断(FDD)的操作阶段应用,在设计和调试阶段探索的操作阶段应用程序更多地应用数据科学技术。此外,指出,需要为各种应用调查更多的数据科学技术。例如,生成的对抗性网络(GANS)具有促进参数设计的潜力;转移学习是推动最佳建筑运作的应用的有希望的道路;(c)2021 Elsevier B.V.保留所有权利。

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