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首页> 外文期刊>Selected Topics in Applied Earth Observations and Remote Sensing, IEEE Journal of >Urban Land Extraction Using DMSP/OLS Nighttime Light Data and OpenStreetMap Datasets for Cities in China at Different Development Levels
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Urban Land Extraction Using DMSP/OLS Nighttime Light Data and OpenStreetMap Datasets for Cities in China at Different Development Levels

机译:使用DMSP / OLS夜间光数据和OpenStreetMap数据集对中国不同发展水平城市的城市土地提取

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摘要

Nighttime light (NTL) and OpenStreetMap (OSM) have been used increasingly to delineate boundaries between urban and nonurban areas. However, systematic comparisons of how well such data can be used for identifying urban land for cities with different development levels are extremely limited. In this study, NTL data from the Defense Meteorological Satellite Program/Operational Linescan System, road data and points-of-interest data from the OSM are carefully selected as main data sources, and further applied for urban land extractions from Chinese cities at different development levels. Approaches being adopted for extractions include the support vector, optimal threshold, sudden-jump, head/tail break, and densi-graph methods. Results show that the overall accuracy of urban land extracted from OSM data is significantly higher than that from NTL data. Averaged overall accuracies (AOAs) of urban land extractions from OSM data are 90%, while AOAs from NTL data are only 76%. Accuracies of urban land extractions experience a decline during increasing city development levels. Averaged balanced accuracies (ABAs) for high-developed cities are the lowest (about 65%), while ABAs for mid- and low-developed cities are comparable (71% and 72%, respectively). Also, significant differences between accuracies of urban land extractions by different methods are not observed in this case. Further, it is suggested that OSM is a robust data source for extracting urban land from cities at different development levels.
机译:越来越多地使用夜间照明(NTL)和OpenStreetMap(OSM)来描绘城市和非城市区域之间的边界。但是,对于不同发展水平的城市,如何很好地利用这些数据来识别城市土地的系统比较非常有限。在这项研究中,精心选择了来自国防气象卫星计划/作战线扫描系统的NTL数据,来自OSM的道路数据和兴趣点数据作为主要数据源,并进一步应用于从不同发展中的中国城市提取城市土地水平。提取所采用的方法包括支持向量,最佳阈值,突然跳跃,头/尾巴折断和密度图方法。结果表明,从OSM数据中提取的城市土地的总体精度明显高于从NTL数据中提取的城市土地。 OSM数据中提取的城市土地的平均总体准确度(AOA)为90%,而NTL数据中的AOA仅为76%。随着城市发展水平的提高,城市土地提取的准确性下降。发达城市的平均均衡准确率最低(约65%),而中等和低端城市的平均均衡准确率相近(分别为71%和72%)。同样,在这种情况下,未观察到通过不同方法提取城市土地的准确性之间的显着差异。此外,建议OSM是用于从处于不同发展水平的城市提取城市土地的强大数据源。

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  • 作者单位

    State Key Laboratory of Water Environment Simulation, School of Environment, Beijing Normal University, Beijing, China;

    State Key Laboratory of Water Environment Simulation, School of Environment, Beijing Normal University, Beijing, China;

    State Key Laboratory of Water Environment Simulation, School of Environment, Beijing Normal University, Beijing, China;

    State Key Laboratory of Water Environment Simulation, School of Environment, Beijing Normal University, Beijing, China;

    State Key Laboratory of Water Environment Simulation, School of Environment, Beijing Normal University, Beijing, China;

    State Key Laboratory of Water Environment Simulation, School of Environment, Beijing Normal University, Beijing, China;

    State Key Laboratory of Urban and Regional Ecology, Research Center of Eco-Environmental Sciences, Chinese Academy of Sciences, Beijing, China;

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  • 正文语种 eng
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  • 关键词

    Urban areas; Data mining; Roads; Earth; Remote sensing; Bandwidth; Support vector machines;

    机译:市区;数据挖掘;道路;地球;遥感;带宽;支持向量机;

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