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LiDAR point-cloud mapping of building facades for building energy performance simulation

机译:建筑立面的LiDAR点云映射以进行建筑能效模拟

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Current processes that create Building Energy Performance Simulation (BEPS) models are time consuming and costly, primarily due to the extensive manual inputs required for model population. In particular, generation of geometric inputs for existing building models requires significant manual intervention due to the absence, or outdated nature of available data or digital measurements. Additionally, solutions based on Building Information Modelling (BIM) also require high quality and precise geometrically-based models, which are not typically available for existing buildings. As such, this work introduces a semi-automated BEPS input solution for existing building exteriors that can be integrated with other related technologies (such as BIM or CityGML) and deployed across an entire building stock. Within the overarching approach, a novel sub-process automatically transforms a point cloud obtained from a terrestrial laser scanner into a representation of a building's exterior facade geometry as input data for a BEPS engine. Semantic enrichment is performed manually. This novel solution extends two existing approaches: (1) an angle criterion in boundary detection and (2) a voxelisation representation to improve performance. The use of laser scanning data reduces temporal costs and improves input accuracy for BEPS model generation of existing buildings. The approach is tested herein on two example cases. Vertical and horizontal accuracies of 1% and 7% were generated, respectively, when compared against independently produced, measured drawings. The approach showed variation in accuracy of model generation, particularly for upper floors of the test case buildings. However, the energy impacts resulting from these variations represented less than 1% of the energy consumption for both cases.
机译:当前创建建筑能效模拟(BEPS)模型的过程既耗时又昂贵,这主要是由于模型填充需要大量的手动输入。特别是,由于缺少可用数据或数字测量或过时的特性,为现有建筑模型生成几何输入需要大量的人工干预。此外,基于建筑物信息建模(BIM)的解决方案还需要高质量和精确的基于几何的模型,而这些模型通常不适用于现有建筑物。因此,这项工作为现有建筑物的外观引入了一种半自动化的BEPS输入解决方案,该解决方案可以与其他相关技术(例如BIM或CityGML)集成并部署在整个建筑物中。在总体方法中,一个新颖的子过程将将从地面激光扫描仪获得的点云自动转换为建筑物外立面几何图形的表示形式,作为BEPS引擎的输入数据。语义丰富是手动执行的。这种新颖的解决方案扩展了两种现有方法:(1)边界检测中的角度标准;(2)体素化表示以提高性能。激光扫描数据的使用减少了时间成本,并提高了现有建筑物BEPS模型生成的输入精度。本文在两种示例情况下测试了该方法。与独立制作的测量图纸相比,其垂直和水平精度分别为1%和7%。该方法显示出模型生成准确性的变化,特别是对于测试用例建筑物的高层。但是,在两种情况下,这些变化所导致的能量影响仅占能耗的不到1%。

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