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Using variograms to detect and attribute hydrological change

机译:使用方差图检测和归因于水文变化

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There have been many published studies aiming to identify temporal changes in river flow time series, most of which use monotonic trend tests such as the Mann-Kendall test. Although robust to both the distribution of the data and incomplete records, these tests have important limitations and provide no information as to whether a change in variability mirrors a change in magnitude. This study develops a new method for detecting periods of change in a river flow time series, using temporally shifting variograms (TSVs) based on applying variograms to moving windows in a time series and comparing these to the long-term average variogram, which characterises the temporal dependence structure in the river flow time series. Variogram properties in each moving window can also be related to potential meteorological drivers. The method is applied to 91 UK catchments which were chosen to have minimal anthropogenic influences and good quality data between 1980 and 2012 inclusive. Each of the four variogram parameters (range, sill and two measures of semi-variance) characterise different aspects of the river flow regime, and have a different relationship with the precipitation characteristics. Three variogram parameters (the sill and the two measures of semi-variance) are related to variability (either day-to-day or over the time series) and have the largest correlations with indicators describing the magnitude and variability of precipitation. The fourth (the range) is dependent on the relationship between the river flow on successive days and is most correlated with the length of wet and dry periods. Two prominent periods of change were identified: 1995-2001 and 2004-2012. The first period of change is attributed to an increase in the magnitude of rainfall whilst the second period is attributed to an increase in variability of the rainfall. The study demonstrates that variograms have considerable potential for application in the detection and attribution of temporal variability and change in hydrological systems.
机译:已有许多旨在确定河流水流时间序列的时间变化的已发表研究,其中大多数使用诸如Mann-Kendall检验的单调趋势检验。尽管这些测试对数据分配和不完整的记录均很可靠,但这些测试具有重要的局限性,并且没有提供有关可变性变化是否反映了幅度变化的信息。这项研究开发了一种检测河流流量时间序列变化周期的新方法,该方法使用时移变异函数(TSV),方法是将变异函数应用于时间序列中的移动窗口,并将其与长期平均变异函数进行比较,以表征河流时间序列中的时间依存结构。每个移动窗口中的方差图属性也可能与潜在的气象驱动因素有关。该方法应用于91个英国集水区,这些集水区被选为具有最小的人为影响,并且在1980年至2012年(含)之间提供高质量的数据。四个变异函数参数(范围,底线和两个半变异性度量)中的每一个都表征了河流流量状态的不同方面,并且与降水特征具有不同的关系。三个变异函数参数(基数和两个半变异性度量)与变异性(无论是每天还是整个时间序列)相关,并且与描述降水量和变异性的指标具有最大的相关性。第四个(范围)取决于连续几天的河流流量之间的关系,并且与干,湿期的长度最相关。确定了两个显着的变化时期:1995-2001年和2004-2012年。第一阶段的变化归因于降雨量的增加,而第二阶段的变化归因于降雨变化性的增加。研究表明,变异函数图在水文系统时间变异性和变化的检测和归因方面具有相当大的潜力。

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