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Developing Superfine Water Index (SWI) for Global Water Cover Mapping Using MODIS Data

机译:使用MODIS数据开发用于全球水覆盖图的超细水指数(SWI)

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Monitoring of water cover and shorelines at a global scale is essential for better understanding climate change consequences and modern human disturbances. The level and turbidity of the surface water, and the background objects in which they interact with, vary significantly at a global scale. The existing water indices applicable to detection and extraction of water cover at local and regional scales cannot work efficiently everywhere in the globe. In this research, a new water index called Superfine Water Index (SWI) was developed for robust detection and discrimination of the surface water at a global scale using MODIS based multispectral data. The SWI was designed in such a way that it provides high contrast between the water and non-water areas. Achieving high contrast is vital for discriminating the surface water mixed with a variety of objects. The sensitivity analysis of the SWI demonstrated its high sensitivity to the surface water compared to the existing water indices. One single-layered global mosaic of a 90-percentile SWI image was used as a master image for global water cover mapping by reducing the large volume of MODIS data available between 2012 and 2014 globally. The random walker algorithm was applied in the SWI image with the support of reference training data for the extraction and mapping of water cover. This research produced an up-to-date global water cover map of the year 2013. The performance of a new map was evaluated with a number of case studies and compared with existing maps. The supremacy of the SWI over the existing water indices, and high performance of the SWI based water map confirmed the reliability of the new water mapping methodology developed. We expect that this methodology can contribute to seasonal and annual change analysis of the global water cover as well.
机译:为了更好地了解气候变化的后果和现代人为干扰,在全球范围内对水覆盖和海岸线进行监测至关重要。在全球范围内,地表水的水平和浊度以及与它们相互作用的背景物体的变化很大。现有的适用于局部和区域尺度的水覆盖率检测和提取的水指标无法在全球任何地方有效地发挥作用。在这项研究中,开发了一种新的水指数,称为超细水指数(SWI),用于使用基于MODIS的多光谱数据在全球范围内可靠地检测和区分地表水。 SWI的设计方式使其在水域和非水域之间具有高对比度。实现高对比度对于区分与各种物体混合的地表水至关重要。 SWI的敏感性分析表明,与现有的水指数相比,它对地表水具有较高的敏感性。通过减少2012年至2014年之间在全球范围内可用的大量MODIS数据,将90%的SWI图像的单层全局镶嵌图用作全球水覆盖图的主图像。在参考训练数据的支持下,将随机沃克算法应用于SWI图像,以提取和绘制水覆盖图。这项研究制作了2013年最新的全球水覆盖图。通过大量案例研究对新地图的性能进行了评估,并将其与现有地图进行了比较。 SWI在现有水位指数上的优势以及基于SWI的水位图的高性能证实了开发的新水位图方法的可靠性。我们希望这种方法可以为全球水覆盖的季节和年度变化分析做出贡献。

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