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Improving ASTER GDEM Accuracy Using Land Use-Based Linear Regression Methods: A Case Study of Lianyungang, East China

机译:基于土地利用的线性回归方法提高ASTER GDEM精度:以中国东部连云港市为例

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The Advanced Spaceborne Thermal-Emission and Reflection Radiometer Global Digital Elevation Model (ASTER GDEM) is important to a wide range of geographical and environmental studies. Its accuracy, to some extent associated with land-use types reflecting topography, vegetation coverage, and human activities, impacts the results and conclusions of these studies. In order to improve the accuracy of ASTER GDEM prior to its application, we investigated ASTER GDEM errors based on individual land-use types and proposed two linear regression calibration methods, one considering only land use-specific errors and the other considering the impact of both land-use and topography. Our calibration methods were tested on the coastal prefectural city of Lianyungang in eastern China. Results indicate that (1) ASTER GDEM is highly accurate for rice, wheat, grass and mining lands but less accurate for scenic, garden, wood and bare lands; (2) despite improvements in ASTER GDEM2 accuracy, multiple linear regression calibration requires more data (topography) and a relatively complex calibration process; (3) simple linear regression calibration proves a practicable and simplified means to systematically investigate and improve the impact of land-use on ASTER GDEM accuracy. Our method is applicable to areas with detailed land-use data based on highly accurate field-based point-elevation measurements.
机译:先进的星载热发射和反射辐射计全球数字高程模型(ASTER GDEM)对于广泛的地理和环境研究非常重要。其准确性(在某种程度上与反映地形,植被覆盖和人类活动的土地利用类型有关)会影响这些研究的结果和结论。为了在应用前提高ASTER GDEM的准确性,我们根据各个土地利用类型调查了ASTER GDEM误差,并提出了两种线性回归校准方法,一种仅考虑土地使用特定误差,另一种考虑两种因素的影响。土地利用和地形。我们的校准方法在中国东部沿海省会城市连云港进行了测试。结果表明:(1)ASTER GDEM对水稻,小麦,草场和采矿地的准确性很高,而对风景名胜,花园,林木和裸地的准确性较低; (2)尽管提高了ASTER GDEM2的准确性,但多次线性回归校准需要更多的数据(地形图)和相对复杂的校准过程; (3)简单的线性回归标定证明了一种可行且简化的方法,可以系统地研究和改善土地利用对ASTER GDEM准确性的影响。我们的方法适用于基于高度精确的基于点的高程测量的详细土地利用数据的区域。

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