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Visual Analysis of Spatio-Temporal Trends in Time-Dependent Ensemble Data Sets on the Example of the North Atlantic Oscillation

机译:北大西洋振荡示例的时间依赖集合数据集的视觉分析

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A driving factor of the winter weather in Western Europe is the North Atlantic Oscillation (NAO), manifested by fluctuations in the difference of sea level pressure between the Icelandic Low and the Azores High. Different methods have been developed that describe the strength of this oscillation, but they rely on certain assumptions, e.g., fixed positions of these two pressure systems. It is possible that climate change affects the mean location of both the Low and the High and thus the validity of these descriptive methods. This study is the first to visually analyze large ensemble climate change simulations (the MPI Grand Ensemble) to robustly assess shifts of the drivers of the NAO phenomenon using the uncertain northern hemispheric surface pressure fields. For this, we use a sliding window approach and compute empirical orthogonal functions (EOFs) for each window and ensemble member, then compare the uncertainty of local extrema in the results as well as their temporal evolution across different CO2 scenarios. We find systematic northeastward shifts in the location of the pressure systems that correlate with the simulated warming. Applying visualization techniques for this analysis was not straightforward; we reflect and give some lessons learned for the field of visualization.
机译:西欧冬季天气的驾驶因素是北大西洋振荡(NAO),体现在冰岛低和亚速尔群中海平面压力差异的波动。已经开发了不同的方法,描述了这种振荡的强度,但它们依赖于某些假设,例如,这两个压力系统的固定位置。气候变化可能会影响低和高的平均位置,从而影响这些描述性方法的有效性。本研究是第一个目视分析大型集合气候变化模拟(MPI Grand Ensemble),以利用不确定的北半球表面压力领域鲁布利地评估Nao现象的司机的转变。为此,我们使用滑动窗口方法并为每个窗口和集合成员计算经验正交功能(EOF),然后比较局部极值在结果中的不确定性以及它们对不同CO的时间演变 2 场景。我们在与模拟变暖相关的压力系统的位置,我们发现系统的东北部位。应用这种分析的可视化技术并不简单;我们反映并为可视化领域作出了一些经验教训。

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