首页> 外文会议>Conference on land surface and cryosphere remote sensing III >Generation of a Precise DEM by interactive synthesis of multi-temporal elevation datasets: a case study of Schirmacher Oasis, East Antarctica
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Generation of a Precise DEM by interactive synthesis of multi-temporal elevation datasets: a case study of Schirmacher Oasis, East Antarctica

机译:通过互动合成来产生一项精确的DEM,对多时间仰角数据集进行:以南南极洲施南奥斯的案例研究

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Digital elevation model (DEM) is indispensable for analysis such as topographic feature extraction, ice sheet melting, slope stability analysis, landscape analysis and so on. Such analysis requires a highly accurate DEM. Available DEMs of Antarctic region compiled by using radar altimetry and the Antarctic digital database indicate elevation variations of up to hundreds of meters, which necessitates the generation of local improved DEM. An improved DEM of the Schirmacher Oasis, East Antarctica has been generated by synergistically fusing satellite-derived laser altimetry data from Geoscience Laser Altimetry System (GLAS), Radarsat Antarctic Mapping Project (RAMP) elevation data and Advanced Space-borne Thermal Emission and Reflection Radiometer (ASTER) global elevation data (GDEM). This is a characteristic attempt to generate a DEM of any part of Antarctica by fusing multiple elevation datasets, which is essential to model the ice elevation change and address the ice mass balance. We analyzed a suite of interpolation techniques for constructing a DEM from GLAS, RAMP and ASTER DEM-based point elevation datasets, in order to determine the level of confidence with which the interpolation techniques can generate a better interpolated continuous surface, and eventually improve the elevation accuracy of DEM from synergistically fused RAMP, GLAS and ASTER point elevation datasets. The DEM presented in this work has a vertical accuracy (≈ 23 m) better than RAMP DEM (≈ 57 m) and ASTER DEM (≈ 64 m) individually. The RAMP DEM and ASTER DEM elevations were corrected using differential GPS elevations as ground reference data, and the accuracy obtained after fusing multitemporal datasets is found to be improved than that of existing DEMs constructed by using RAMP or ASTER alone. This is our second attempt of fusing multitemporal, multisensory and multisource elevation data to generate a DEM of Antarctica, in order to address the ice elevation change and address the ice mass balance. Our approach focuses on the strengths of each elevation data source to produce an accurate elevation model.
机译:数字高程模型(DEM)是用于分析不可缺少诸如地形特征提取,冰盖融化,边坡稳定分析,景观分析等。这种分析需要高度精确的DEM。通过使用雷达测高和南极数字化数据库编译南极地区的可用数字高程模型表明了高程变化到几百米,这需要当地改善DEM的生成。所述施尔马赫绿洲的改进的DEM,东南极洲已经通过协同从地球科学激光测系统(GLAS),雷达卫星南极测绘项目(RAMP)高程数据和高级融合卫星获得的激光测数据生成星载热辐射和反射辐射计(ASTER)全球高程数据(GDEM)。这是通过将多个数据集抬高,这是必不可少的模拟冰高程变化和应对冰质量平衡产生南极洲的任何部分的DEM特征的尝试。我们分析了一套插值技术构建从GLAS,RAMP和ASTER一个DEM数字高程模型为基础的点高程数据集,以确定的置信度水平与插值技术,可以产生更好的内插连续的表面,并最终提高标高从协同融合RAMP,GLAS和ASTER点高程数据集DEM的精度。在这项工作中所呈现的DEM具有垂直精度(≈23米)优于RAMP DEM(≈57米)和ASTER DEM(≈64米)单独地。使用差分GPS海拔作为接地基准数据的RAMP和DEM ASTER DEM海拔进行校正,并熔合多时数据集之后获得的精确度被发现比通过单独使用或RAMP ASTER构成现有的DEM的加以改进。这是我们的融合多时相,多感官和多源高程数据生成南极的DEM,为了解决冰高程变化和应对冰质量平衡的第二次尝试。我们的方法侧重于各高程数据源的优势,产生精确的高程模型。

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