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Social functional mapping of urban green space using remote sensing and social sensing data

机译:利用遥感和社会感知数据绘制城市绿色空间的社会功能图

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摘要

Urban green space (UGS) is an indispensable component of urban environmental systems and is important to urban residents. Both physical features (e.g., shrubs, trees) and social functions (e.g., public parks, green buffers) are important in UGS mapping. Most UGS studies rely solely on remote sensing data to conduct UGS mapping of physical features, and few studies have focused on UGS mapping from a social function perspective. Due to the limitations of remote sensing in identifying social features; social sensing, which can reflect socioeconomic characteristics, is needed. As a result, a novel methodological framework for integrating these two different data sources to conduct the social functional mapping of UGS has been required. Consequently, we first extracted vegetation patches from an area in Beijing, via the Hyperplanes for Plant Extraction Methodology (HPEM) and considered the parcels segmented by the OpenStreetMap (OSM) road networks as the basic analytical units. Then, near-convex-hull analysis (NCHA) and text-concave-hull analysis (TCHA) were performed to integrate the multi-source data. The results show that the Level I and Level II (refer to Table 3) social function types of UGS had overall accuracies of 92.48% and 88.76%, respectively. Our study provides an improved understanding of UGS and can assist government departments in urban planning. It can also help researchers broaden their research scope by acting as a freely available data source for their work.
机译:城市绿地(UGS)是城市环境系统必不可少的组成部分,对城市居民而言非常重要。物理特征(例如灌木,树木)和社会功能(例如公园,绿色缓冲区)在UGS制图中都很重要。大多数UGS研究仅依靠遥感数据进行物理特征的UGS映射,很少有研究从社会功能的角度关注UGS映射。由于遥感在识别社会特征方面的局限性;需要能够反映社会经济特征的社会意识。结果,需要一种新颖的方法框架来整合这两个不同的数据源以进行UGS的社会功能映射。因此,我们首先通过植物提取方法超平面(HPEM)从北京的某个区域提取了植被斑块,然后将通过OpenStreetMap(OSM)道路网分割的地块视为基本分析单位。然后,进行了近凸壳分析(NCHA)和文本凹壳分析(TCHA)来集成多源数据。结果显示,UGS的I级和II级(参见表3)社会功能类型的总体准确度分别为92.48%和88.76%。我们的研究提供了对UGS的更好理解,并可以协助政府部门进行城市规划。它还可以充当研究人员的免费数据来源,从而帮助研究人员扩大研究范围。

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