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An efficient binary storage format for IFC building models using HDF5 hierarchical data format

机译:使用HDF5分层数据格式的IFC构建模型的有效二进制存储格式

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The Industry Foundation Classes (IFC) are a prevalent data model in which Building Information Models can be exchanged, typically with a file-based nature. Processing the full extent of these models can be time-consuming. Considering the multi-disciplinary nature of the construction industry, stakeholders will typically only be interested in a small subset, depending on the purpose of the exchange. Therefore, the retrieval of relevant subsets, whether spatially, based on discipline, or others, is necessary to effectively consume such datasets in downstream applications.Prevalent encoding forms of IFC models are text-based and do not facilitate random-access seeking within the file and do not impose an ordering on the definition of elements within the file. Therefore, typically, the entire file needs to be read in order to find the data of interest. Furthermore, text-based data is slower to parse in comparison to binary data.This paper assesses a binary serialization format originating from the family of EXPRESS standards. It is based on an existing open, binary, hierarchical data format called HDF5 that allows random access to specific instances and therefore efficient retrieval of relevant subsets. The block-level, transparent compression yields a reduction of file sizes as compared to traditional serializations. Fully specified datatypes embedded in the exchange guarantee interoperable use.In this paper, several serialization profiles are introduced that cater to specific use cases by governing storage settings. Advanced functionality from the HDF5 library is applied to offer novel paradigms for fine-grained access rights, varying level of detail, revision management and aggregation of aspect models.
机译:工业基础类(IFC)是一种流行的数据模型,在其中可以交换建筑物信息模型,通常具有基于文件的性质。处理这些模型的全部范围可能很耗时。考虑到建筑业的多学科性质,利益相关者通常只对一小部分感兴趣,这取决于交流的目的。因此,有必要在空间上,基于学科或其他方面检索相关子集,以有效地在下游应用程序中使用此类数据集.IFC模型的普遍编码形式是基于文本的,因此不便于在文件内进行随机访问查找并且不要对文件中元素的定义强加排序。因此,通常,需要读取整个文件以便找到感兴趣的数据。此外,与二进制数据相比,基于文本的数据解析速度较慢。本文评估了源自EXPRESS标准族的二进制序列化格式。它基于称为HDF5的现有开放,二进制,分层数据格式,该格式允许随机访问特定实例,因此可以有效地检索相关子集。与传统的序列化相比,块级别的透明压缩可减少文件大小。嵌入在交换中的完全指定的数据类型可确保互操作性。本文介绍了几种序列化配置文件,它们通过控制存储设置来满足特定的用例。 HDF5库中的高级功能可用于提供新颖的范例,以实现细粒度的访问权限,不同级别的详细信息,修订管理以及方面模型的聚合。

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