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Modelling of roof geometries from low-resolution 1 LiDAR data for city-scale solar energy applications using a neighbouring buildings method

机译:使用邻近建筑物方法从城市规模太阳能应用的低分辨率1 LiDaR数据建模屋顶几何形状

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摘要

This article describes a method to model roof geometries from widely available low-resolution (2 m horizontal) Light Detection and Ranging (LiDAR) datasets for application on a city wide scale. The model provides roof area, orientation, and slope, appropriate for predictions of solar technology performance, being of value to national and regional policy makers in addition to investors and individuals appraising the viability of specific sites. Where present, similar buildings are grouped together based on proximity and building footprint dimensions. LiDAR data from all the buildings in a group is combined to construct a shared high-resolution LiDAR dataset. The best-fit roof shape is then selected from a catalogue of common roof shapes and assigned to all buildings in that group. Method validation was completed by comparing the model output to a ground-based survey of 169 buildings and aerial photographs of 536 buildings, all located in Leeds, UK. The method correctly identifies roof shape in 87% of cases and the modelled roof slope has a mean absolute error of 3.76°. These performance figures are only possible when segmentation, similar building grouping and ridge repositioning algorithms are used.
机译:本文介绍了一种从广泛可用的低分辨率(水平2 m)光检测和测距(LiDAR)数据集建模屋顶几何形状的方法,以在城市范围内应用。该模型提供了屋顶面积,方向和坡度,适合于预测太阳能技术的性能,除了评估特定地点的可行性的投资者和个人之外,对于国家和地区政策制定者也很有价值。如果存在,类似的建筑物将根据邻近度和建筑物占地面积尺寸分组在一起。合并来自一组中所有建筑物的LiDAR数据,以构建共享的高分辨率LiDAR数据集。然后从常见屋顶形状的目录中选择最适合的屋顶形状,并将其分配给该组中的所有建筑物。通过将模型输出与对169座建筑物的地面调查和536座建筑物的航拍照片进行比较来完成方法验证,所有这些都位于英国利兹。该方法可以在87%的情况下正确识别屋顶形状,并且建模的屋顶坡度的平均绝对误差为3.76°。这些性能数据仅在使用分段,类似的建筑物分组和屋脊重新定位算法时才可能。

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