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Automatic Detection of Geometric Errors in Space Boundaries of IFC-BIM Models Using Monte Carlo Ray Tracing Approach

机译:使用蒙特卡洛射线追踪方法自动检测IFC-BIM模型空间边界中的几何误差

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摘要

In Industry Foundation Classes (IFC) building information modeling (BIM), the objectified concept of a space boundary (SB) provides a means to define building space geometries with surface entities. Such building-geometry definitions are widely used for various engineering applications such as energy simulation, lighting analysis, and facility management. However, quality issues (i.e., geometric and nongeometric issues) of SBs have been widely reported, which makes it necessary to validate the SBs before retrieving them from IFC models for relevant applications. Unfortunately, there is still a lack of reliable mechanisms/tools to automatically evaluate the quality of SBs, especially the geometric quality. This study proposes a Monte Carlo ray tracing approach to automatically detect geometric errors in SBs. The approach checks SBs space by space in terms of whether each space is correctly bounded by its SBs. The geometric errors in the set of SBs of a space that the approach can detect include gaps, overhangs, and overlaps between SBs as well as incorrect surface normal directions of SBs. To accelerate the ray tracing process in the approach, the axis-aligned bounding box (AABB) tree is implemented to spatially index SBs of each space. The approach is evaluated with extensive performance tests in terms of robustness and efficiency. The results show that the approach can robustly and efficiently detect all four types of geometric errors even in extreme cases and that the AABB tree helps speed up the approach significantly for large-scale IFC models with many complex spaces.
机译:在行业基础分类(IFC)建筑信息模型(BIM)中,空间边界(SB)的物化概念提供了一种使用表面实体定义建筑空间几何的方法。这样的建筑物几何形状定义被广泛用于各种工程应用,例如能量模拟,照明分析和设施管理。但是,SB的质量问题(即几何和非几何问题)已被广泛报道,这使得有必要在从IFC模型中为相关应用检索SB之前对其进行验证。不幸的是,仍然缺乏可靠的机制/工具来自动评估SB的质量,尤其是几何质量。这项研究提出了一种蒙特卡洛射线追踪方法来自动检测SB中的几何误差。该方法根据每个空间是否被其SB正确界定来逐个空间检查SB。该方法可以检测到的空间中的一组SB的几何误差包括SB之间的间隙,悬垂和重叠以及SB的不正确的表面法线方向。为了加快该方法中的光线跟踪过程,实施了轴对齐包围盒(AABB)树以在空间上索引每个空间的SB。通过鲁棒性和效率方面的广泛性能测试,对该方法进行了评估。结果表明,即使在极端情况下,该方法也可以鲁棒而有效地检测所有四种类型的几何误差,并且AABB树有助于显着加快具有许多复杂空间的大规模IFC模型的方法。

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