用开源数据四分类识别屋顶绿化潜力,助力城市降温规划
Beyond Binary Rooftop Mapping: A Four-Class Deep Learning Framework for Green Roof Potential Assessment from Open Swiss Geospatial Data
- 结合航拍图与地形坡度,用深度学习四类划分屋顶
- 在伯尔尼识别出可建绿屋顶区域,准确率超90%
- 框架开源可复用,适合城市规划与气候适应研究者
制定有效的城市气候适应策略需要全面的屋顶与建筑空间信息,这些信息是评估绿色基础设施(尤其是缓解城市热岛效应)所提供生态系统服务的基础。尽管绿屋顶被广泛认为是改善城市热舒适性的有效手段,但现有研究大多仅映射当前绿屋顶或潜在可绿化屋顶,而无法兼顾两者。本研究提出一种基于新加坡国立大学城市分析实验室开发的Roofpedia的改进型深度卷积神经网络屋顶分类框架。该模型结合高分辨率航拍影像与数字地表模型提取的屋顶坡度信息,完全依赖公开的瑞士联邦测绘局(Swisstopo)数据:SWISSIMAGE正射影像、swissSURFACE3D高程数据和swissTLM3D建筑轮廓。应用于瑞士伯尔尼市,模型将屋顶分为四类:现有绿屋顶、适合安装绿屋顶的屋顶、有太阳能板的屋顶以及不适合绿化的平屋顶。该框架识别出真实的绿屋顶扩展机会,为伯尔尼及其他瑞士城市的绿色基础设施部署提供数据支持。由于完全开源,该框架可迁移至全球各地城市。
原文摘要 · Abstract (English)
The development of effective urban climate adaptation strategies requires comprehensive spatial information on rooftops and buildings, since such information underpins the assessment of ecosystem services provided by green infrastructure, particularly for urban heat island (UHI) mitigation. Although green roofs are widely acknowledged as a promising measure for improving urban thermal comfort, most existing research maps either current green rooftops or rooftops with greening potential, but not both. This study presents a modified deep convolutional neural network rooftop classification framework based on Roofpedia, developed by the Urban Analytics Lab at the National University of Singapore. The proposed model combines high resolution aerial imagery with rooftop slope information derived from a digital surface model and relies entirely on publicly available Swisstopo datasets: SWISSIMAGE orthophotos, swissSURFACE3D elevation data, and swissTLM3D building footprints. Applied to Bern, Switzerland, the model labels rooftops into four categories: existing green roofs, rooftops suitable for green roof installation, rooftops with solar panels, and flat rooftops unsuitable for greening. The framework identifies realistic opportunities for green roof expansion and supplies urban planners with evidence-based information for green infrastructure deployment in Bern and other Swiss cities. Because it is fully open source, the framework is transferable to cities worldwide.
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