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Retrieval of grassland plant coverage on the Tibetan Plateau based on a multi-scale, multi-sensor and multi-method approach

机译:基于多尺度,多传感器,多方法的青藏高原草地植物覆盖度反演

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Plant coverage is a basic indicator of the biomass production in ecosystems. On the Tibetan Plateau, the biomass of grasslands provides major ecosystem services with regard to the predominant transhumance economy. The pastures, however, are threatened by progressive degradation, resulting in a substantial reduction in plant coverage with currently unknown consequences for the hydrological/climate regulation function of the plateau and the major river systems of SE Asia that depend on it and provide water for the adjacent lowlands. Thus, monitoring of changes in plant coverage is of utmost importance, but no reliable tools have been available to date to monitor the changes on the entire plateau. Due to the wide extent and remoteness of the Tibetan Plateau, remote sensing is the only tool that can recurrently provide area-wide data for monitoring purposes. In this study, we develop and present a grassland-cover product based on multi-sensor satellite data that is applicable for monitoring at three spatial resolutions (WorldView type at 2-5 m, Landsat type at 30 m, MODIS at 500 m), where the data of the latter resolution cover the entire plateau. Four different retrieval techniques to derive plant coverage from satellite data in boreal summer (JJA) were tested. The underlying statistical models are derived with the help of field observations of the cover at 640 plots and 14 locations, considering the main grassland vegetation types of the Tibetan Plateau. To provide a product for the entire Tibetan Plateau, plant coverage estimates derived by means of the higher-resolution data were upscaled to MODIS composites acquired between 2011 and 2013. An accuracy assessment of the retrieval methods revealed best results for the retrieval using support vector machine regressions (RMSE: 9.97%, 7.13% and 5.51% from the WorldView to the MODIS scale). The retrieved values coincide well with published coverage data on the different grassland vegetation types. (C) 2015 Elsevier Inc All rights reserved.
机译:植物覆盖率是生态系统中生物量生产的基本指标。在青藏高原上,草地的生物量为主要的超人类经济提供了主要的生态系统服务。然而,牧场受到逐步退化的威胁,导致植物覆盖面的大幅减少,对高原和依赖该高原并为该地区提供水的东南亚主要河流系统的水文/气候调节功能造成目前未知的后果。相邻的低地。因此,监测植物覆盖率的变化至关重要,但是迄今为止尚无可靠的工具来监测整个高原的变化。由于青藏高原的广度和偏远性,遥感是唯一可以循环提供区域范围数据以进行监测的工具。在这项研究中,我们开发并展示了一种基于多传感器卫星数据的草地覆盖产品,该产品适用于三种空间分辨率(WorldView类型为2-5 m,Landsat类型为30 m,MODIS为500 m)进行监视,后一种分辨率的数据覆盖整个平台。测试了四种不同的检索技术,这些技术可从北方夏季(JJA)的卫星数据得出植物覆盖率。考虑到青藏高原的主要草地植被类型,基本的统计模型是在对640个地块和14个位置的覆盖物进行实地观测的基础上得出的。为了提供整个青藏高原的产品,通过更高分辨率的数据得出的植物覆盖率估算值被提升到了2011年至2013年间获得的MODIS复合材料。对检索方法的准确性评估显示,使用支持向量机进行检索的最佳结果回归(从WorldView到MODIS比例的RMSE:9.97%,7.13%和5.51%)。检索到的值与有关不同草地植被类型的已发布覆盖率数据非常吻合。 (C)2015 Elsevier Inc保留所有权利。

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