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Detection of Breakpoints in Global NDVI time series

机译:检测全局NDVI时间序列中的断点

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Continuous global time series of vegetation indices, which are available since early 1980s, are of great value to detect changes in vegetation status at large spatial scales. Most change detection methods, however, assume a fixed change trajectory - defined by the start and end of the time series - and a linear or monotonic trend. Here, we apply a change detection method which detects abrupt changes within the time series. This Breaks For Additive Season and Trend (BFAST) approach showed that large parts of the world are subjected to trend changes. The timing of the breakpoints could in some cases be related to satellite changes, but also to large-scale natural influences like the Mt. Pinatubo eruption. Shifts from greening to browning (or vice versa) occurred in 15% of the global land surface, which demonstrates the importance of accounting for trend breaks when analyzing long-term NDVI time series.
机译:自1980年代初以来可获得的连续的全球植被指数时间序列,对于检测大空间尺度上的植被状况变化具有重要价值。但是,大多数变更检测方法都采用固定的变更轨迹(由时间序列的开始和结束定义)以及线性或单调趋势。在这里,我们采用了一种变化检测方法,可以检测时间序列内的突然变化。这种“打破附加季节和趋势”(BFAST)的方法表明,世界上大部分地区都在发生趋势变化。在某些情况下,断点的时间可能与人造卫星的变化有关,但也可能与像山一样的大规模自然影响有关。皮纳图博火山爆发。从绿化到褐变(反之亦然)的变化发生在全球15%的地面上,这表明在分析长期NDVI时间序列时考虑趋势突变的重要性。

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