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Estimation of Gross Domestic Product Using Multi-Sensor Remote Sensing Data: A Case Study in Zhejiang Province, East China

机译:利用多传感器遥感数据估算国内生产总值:以中国浙江省为例

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There exists a spatial mismatch between socioeconomic data, such as Gross Domestic Product (GDP), and physical and environmental datasets. This study provides a dasymetric approach for GDP estimation at a fine scale by combining the Defense Meteorological Satellite Program Operational Linescan System (DMSP/OLS) nighttime imagery, enhanced vegetation index (EVI), and land cover data. Despite the advantages of DMSP/OLS nighttime imagery in estimating human activities, its drawbacks, including coarse resolution, overglow, and saturation effects, limit its application. Hence, high-resolution EVI data were integrated with DMSP/OLS in this study to create a Human Settlement Index (HSI) for estimating the GDP of secondary and tertiary industries. The GDP of the primary industry was then estimated on the basis of land cover data, and the area with the GDP of the primary industry was classified by a threshold technique (DN ≤ 8). The regression model for GDP distribution estimation was implemented in Zhejiang Province in southeast China, and a GDP density map was generated at a resolution of 250 m × 250 m. Compared with the outcome of taking DMSP/OLS as a unique parameter, estimation errors obviously decreased. This study offers a low-cost and accurate approach for rapidly estimating high-resolution GDP distribution to construct an important database for the government when formulating developmental strategies.
机译:社会经济数据(例如国内生产总值)与物理和环境数据集之间存在空间不匹配的情况。这项研究通过结合国防气象卫星计划作战线扫描系统(DMSP / OLS)夜间图像,增强植被指数(EVI)和土地覆盖数据,为精细估算GDP的方法提供了一种方法。尽管DMSP / OLS夜间图像在估计人类活动方面具有优势,但其缺点(包括较差的分辨率,过发光和饱和效果)限制了其应用。因此,本研究将高分辨率的EVI数据与DMSP / OLS集成在一起,以建立人类住区指数(HSI)来估算第二产业和第三产业的GDP。然后,根据土地覆盖数据估算第一产业的GDP,并通过阈值技术(DN≤8)对第一产业的GDP进行分类。在中国东南部的浙江省实施了GDP分布估计的回归模型,并以250 m×250 m的分辨率生成了GDP密度图。与以DMSP / OLS作为唯一参数的结果相比,估计误差明显减少。这项研究提供了一种低成本,准确的方法,可以快速估算高分辨率的GDP分布,从而在制定发展战略时为政府构建重要的数据库。

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