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Spatial parameters for transportation: A multi-modal approach for modelling the urban spatial structure using deep learning and remote sensing

机译:运输空间参数:利用深层学习和遥感建模城市空间结构的多模态方法

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A significant increase in global urban population affects the efficiency of urban transportation systems. Remarkable urban growth rates are observed in developing or newly industrialized countries where researchers, planners, and authorities face scarcity of relevant official data or geo-data. In this study, we explore remote sensing and open geo-data as alternative sources to generate missing data for transportation models in urban planning and research. We propose a multi-modal approach capable of assessing three essential parameters of the urban spatial structure: buildings, land use, and intra-urban population distribution. Therefore, we first create a very high-resolution (VHR) 3D city model for estimating the building floors. Second, we add detailed land-use information retrieved from OpenStreetMap (OSM). Third, we test and evaluate five experiments to estimate population at a single building level. In our experimental set-up for the mega-city of Santiago de Chile, we find that the multi-modal approach allows generating missing data for transportation independently from official data for any area across the globe. Beyond that, we find the high-level 3D city model is the most accurate for determining population on small scales, and thus evaluate that the integration of land use is an inevitable step to obtain fine-scale intra-urban population distribution.
机译:全球城市人口的显着增加会影响城市交通系统的效率。在开发或新工业化国家观察到卓越的城市增长率,其中研究人员,规划人员和当局面临相关官方数据或地理数据的稀缺。在这项研究中,我们探索遥感和开放地理数据作为替代来源,以产生城市规划和研究中的运输模式的缺失数据。我们提出了一种能够评估城市空间结构三个基本参数的多模态方法:建筑,土地利用和城市内部人口分布。因此,我们首先创建一个非常高分辨率(VHR)3D城市模型,用于估计建筑地板。其次,我们添加了从OpenStreetMap(OSM)检索的详细的土地使用信息。第三,我们测试并评估五个实验,以估算单个建筑水平的人口。在我们对智利的Mega-City的实验设置中,我们发现多模态方法允许独立于全球任何区域的官方数据产生缺失的运输数据。除此之外,我们发现高级别的3D城市模型最准确地确定小尺度上的人口,从而评估土地使用的整合是获得微量城市内部人口分布的不可避免的步骤。

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