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The Suitability of Different Nighttime Light Data for GDP Estimation at Different Spatial Scales and Regional Levels

机译:不同夜间光数据在不同空间尺度和区域水平上对GDP估算的适用性

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Nighttime light data offer a unique view of the Earth’s surface and can be used to estimate the spatial distribution of gross domestic product (GDP). Historically, using a simple regression function, the Defense Meteorological Satellite Program’s Operational Linescan System (DMSP/OLS) has been used to correlate regional and global GDP values. In early 2013, the first global Suomi National Polar-orbiting Partnership (NPP) visible infrared imaging radiometer suite (VIIRS) nighttime light data were released. Compared with DMSP/OLS, they have a higher spatial resolution and a wider radiometric detection range. This paper aims to study the suitability of the two nighttime light data sources for estimating the GDP relationship between the provincial and city levels in Mainland China, as well as of different regression functions. First, NPP/VIIRS nighttime light data for 2014 are corrected with DMSP/OLS data for 2013 to reduce the background noise in the original data. Subsequently, three regression functions are used to estimate the relationship between nighttime light data and GDP statistical data at the provincial and city levels in Mainland China. Then, through the comparison of the relative residual error (RE) and the relative root mean square error (RRMSE) parameters, a systematical assessment of the suitability of the GDP estimation is provided. The results show that the NPP/VIIRS nighttime light data are better than the DMSP/OLS data for GDP estimation, whether at the provincial or city level, and that the power function and polynomial models are better for GDP estimation than the linear regression model. This study reveals that the accuracy of GDP estimation based on nighttime light data is affected by the resolution of the data and the spatial scale of the study area, as well as by the land cover types and industrial structures of the study area.
机译:夜间光数据可提供地球表面的独特视图,并可用于估计国内生产总值(GDP)的空间分布。过去,国防气象卫星计划的操作线扫描系统(DMSP / OLS)使用简单的回归函数来关联区域和全球GDP值。 2013年初,发布了全球首个Suomi国家极地轨道伙伴关系(NPP)可见红外成像辐射计套件(VIIRS)夜间光数据。与DMSP / OLS相比,它们具有更高的空间分辨率和更宽的辐射检测范围。本文旨在研究两个夜间光数据源用于估计中国大陆省市之间的GDP关系以及不同回归函数的适用性。首先,将2014年的NPP / VIIRS夜间灯光数据与2013年的DMSP / OLS数据进行校正,以减少原始数据中的背景噪声。随后,使用三个回归函数来估计中国大陆省市级夜间灯光数据与GDP统计数据之间的关系。然后,通过比较相对残差(RE)和相对均方根误差(RRMSE)参数,提供了对GDP估计的适用性的系统评估。结果表明,无论是在省级还是市级水平上,NPP / VIIRS夜间光数据均优于DMSP / OLS数据进行GDP估算,并且幂函数和多项式模型对GDP的估算优于线性回归模型。这项研究表明,基于夜间光数据的GDP估算准确性受到数据分辨率和研究区域空间规模以及研究区域的土地覆盖类型和产业结构的影响。

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