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Rule-based system to detect energy efficiency anomalies in smart buildings, a data mining approach

机译:基于规则的系统,用于检测智能建筑中的能效异常,一种数据挖掘方法

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The rapidly growing world energy use already has concerns over the exhaustion of energy resources and heavy environmental impacts. As a result of these concerns, a trend of green and smart cities has been increasing. To respond to this increasing trend of smart cities with buildings every time more complex, in this paper we have proposed a new method to solve energy inefficiencies detection problem in smart buildings. This solution is based on a rule-based system developed through data mining techniques and applying the knowledge of energy efficiency experts. A set of useful energy efficiency indicators is also proposed to detect anomalies. The data mining system is developed through the knowledge extracted by a full set of building sensors. So, the results of this process provide a set of rules that are used as a part of a decision support system for the optimisation of energy consumption and the detection of anomalies in smart buildings. (C) 2016 Elsevier Ltd. All rights reserved.
机译:快速增长的世界能源使用已经引起能源资源枯竭和严重的环境影响的担忧。由于这些担忧,绿色和智慧城市的趋势一直在增长。为了应对智能城市随着建筑的日益复杂化而不断增长的趋势,本文提出了一种解决智能建筑能源效率低下问题的新方法。该解决方案基于通过数据挖掘技术并应用能效专家知识开发的基于规则的系统。还提出了一组有用的能效指标来检测异常。数据挖掘系统是通过全套建筑物传感器提取的知识开发的。因此,此过程的结果提供了一组规则,这些规则用作决策支持系统的一部分,用于优化能耗和智能建筑中的异常检测。 (C)2016 Elsevier Ltd.保留所有权利。

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