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Semantic information alignment of BIMs to computer-interpretable regulations using ontologies and deep learning

机译:使用本体和深度学习的语义信息对准BIMS对计算机可解释的法规

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A semantic information alignment method is proposed to align the representations used in building information models (BIMs) to the representations used in energy regulations. Compared to existing alignment efforts, which are either manual or semi-automated, the proposed method aims to automate the alignment process for supporting fully automated energy compliance checking. A first-level simple alignment method is proposed to align single design information instances to single regulatory concepts, in which (1) domain knowledge is used for interpreting the meaning of concepts to recognize candidate instances, and (2) deep learning is used for capturing the semantics behind the words to measure semantic similarity and select the matches. A final complex alignment method is proposed to recognize the instance groups belonging to a regulatory requirement, in which (1) supervised and unsupervised searching algorithms are used to identify the instance pairs, and (2) network modeling is used to group and link the instance pairs to the requirement. The proposed method showed 93.4% recall and 94.7% precision on the testing data.
机译:提出了一种语义信息对准方法,以将建筑物模型(BIMS)与能量规范中使用的表示的表示对齐。与现有的对齐工作相比,这是手动或半自动的,所提出的方法旨在自动化对准过程,以支持全自动能量合规性检查。提出了第一级简单对准方法,以将单个设计信息实例对准单一的监管概念,其中(1)域知识用于解释概念识别候选实例的概念,并且(2)深度学习用于捕获以衡量语义相似性的单词背后的语义,选择匹配。提出了最终复杂的对准方法以识别属于监管要求的实例组,其中(1)监督和无监督的搜索算法用于标识实例对,并且(2)网络建模用于组和链接实例对要求。该方法在测试数据上显示了93.4%的召回和94.7%的精度。

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