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Usability evaluation of a web-based tool for supporting holistic building energy management

机译:基于Web的工具的可用性评估,以支持整体建筑能源管理

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摘要

This paper presents the evaluation of the level of usability of an intelligent monitoring and control interface for energy efficient management of public buildings, called BuildVis, which forms part of a Building Energy Management System (BEMS.) The BEMS 'intelligence' is derived from an intelligent algorithm component which brings together ANN-GA rule generation, a fuzzy rule selection engine, and a semantic knowledge base. The knowledge base makes use of linked data and an integrated ontology to uplift heterogeneous data sources relevant to building energy consumption. The developed ontology is based upon the Industry Foundation Classes (IFC), which is a Building Information Modelling (BIM) standard and consists of two different types of rule model to control and manage the buildings adaptively. The populated rules are a mix of an intelligent rule generation approach using Artificial Neural Network (ANN) and Genetic Algorithms (GA), and also data mining rules using Decision Tree techniques on historical data. The resulting rules are triggered by the intelligent controller, which processes available sensor measurements in the building. This generates 'suggestions' which are presented to the Facility Manager (FM) on the BuildVis web-based interface. BuildVis uses HTML5 innovations to visualise a 3D interactive model of the building that is accessible over a wide range of desktop and mobile platforms. The suggestions are presented on a zone by zone basis, alerting them to potential energy saving actions. As the usability of the system is seen as a key determinate to success, the paper evaluates the level of usability for both a set of technical users and also the FMs for five European buildings, providing analysis and lessons learned from the approach taken.
机译:本文介绍了对称为公共建筑节能管理的智能监控界面的可用性水平的评估,该界面称为BuildVis,它构成了建筑能源管理系统(BEMS)的一部分。BEMS的“智能”源自于智能算法组件,将ANN-GA规则生成,模糊规则选择引擎和语义知识库组合在一起。知识库利用链接的数据和集成的本体来提升与建筑能耗相关的异构数据源。所开发的本体基于行业基础分类(IFC),它是建筑信息模型(BIM)标准,由两种不同类型的规则模型组成,用于自适应地控制和管理建筑物。填充的规则是使用人工神经网络(ANN)和遗传算法(GA)的智能规则生成方法,以及使用决策树技术对历史数据进行数据挖掘的规则的混合体。生成的规则由智能控制器触发,该智能控制器处理建筑物中可用的传感器测量值。这会生成“建议”,并在BuildVis基于Web的界面上显示给设施管理器(FM)。 BuildVis使用HTML5创新来可视化建筑物的3D交互式模型,该模型可在各种台式机和移动平台上访问。这些建议将按区域进行介绍,提醒他们注意潜在的节能措施。由于系统的可用性被认为是成功的关键,因此本文评估了一组技术用户以及五座欧洲建筑物的FM的可用性水平,并提供了从所采用的方法中得出的分析和经验教训。

著录项

  • 来源
    《Automation in construction》 |2017年第12期|154-165|共12页
  • 作者单位

    Trinity Coll Dublin, Sch Comp Sci & Stat, Knowledge & Data Engn Grp, ADAPT Ctr, Dublin, Ireland;

    Univ Exeter, Coll Engn Math & Phys Sci, Streatham Campus, Exeter EX4 4QJ, Devon, England|Cardiff Univ, Sch Engn, BRE Inst Sustainable Engn, Queens Bldg, Cardiff CF24 3AA, S Glam, Wales;

    Karlsruhe Inst Technol, Inst Informat Management Engn, Karlsruhe, Germany|Airlangga Univ, Dept Management, Surabaya, Indonesia;

    Cardiff Univ, Sch Engn, BRE Inst Sustainable Engn, Queens Bldg, Cardiff CF24 3AA, S Glam, Wales;

    Cardiff Univ, Sch Engn, BRE Inst Sustainable Engn, Queens Bldg, Cardiff CF24 3AA, S Glam, Wales;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Ontology; BEMS; Genetic algorithm; Artificial neural network; Fuzzy logic; Information visualisation; IFC;

    机译:本体;BEMS;遗传算法;人工神经网络;模糊逻辑;信息可视化;IFC;

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