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Detecting seasonal ice dynamics in satellite images

机译:检测卫星图像中的季节性冰动态

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Fully understanding how glaciers respond to environmental change will require new methods to help us identify the onset of ice acceleration events and observe how dynamic signals propagate within glaciers. In particular, observations of ice dynamics on seasonal timescales may offer insights into how a glacier interacts with various forcing mechanisms throughout the year. The task of generating continuous ice velocity time series that resolve seasonal variability is made difficult by a spotty satellite record that contains no optical observations during dark, polar winters. Furthermore, velocities obtained by feature tracking are marked by high noise when image pairs are separated by short time intervals and contain no direct insights into variability that occurs between images separated by long time intervals. In this paper, we describe a method of analyzing optical- or radar-derived feature-tracked velocities to characterize the magnitude and timing of seasonal ice dynamic variability. Our method is agnostic to data gaps and is able to recover decadal average winter velocities regardless of the availability of direct observations during winter. Using characteristic image acquisition times and error distributions from Antarctic image pairs in the ITS_LIVE dataset, we generate synthetic ice velocity time series, then apply our method to recover imposed magnitudes of seasonal variability within ± 1.4?m?yr ?1 . We then validate the techniques by comparing our results to GPS data collected on Russell Glacier in Greenland. The methods presented here may be applied to better understand how ice dynamic signals propagate on seasonal timescales and what mechanisms control the flow of the world’s ice.
机译:完全了解冰川如何应对环境变化将需要新的方法来帮助我们识别冰加速度事件的开始,并观察动态信号如何在冰川内传播。特别是,对季节性时间尺度的冰动态观察可能会对冰川如何在全年与各种强制机制互动的见解。通过在黑暗,极地冬季不含光学观测的光谱卫星记录难以解决季节性变异性的连续冰速度时间序列的任务。此外,当图像对通过短时间间隔分离时,通过特征跟踪获得的速度标记为高噪声,并且在长时间间隔间隔之间发生的图像之间发生的可变性的直接见解。在本文中,我们描述了一种分析光学或雷达推导的特征跟踪速度的方法,以表征季节性冰动态变异性的幅度和时序。我们的方法对于数据差距不可知,无论在冬季的直接观察的可用性如何,都能够恢复二等程度的冬季速度。使用特征图像获取时间和从南极图像对中的错误分布在其ITS_LIVE DataSet中,我们生成合成冰速度时间序列,然后应用我们的方法在±1.4中恢复季节性变化的施加大幅度±1.4m≤1。然后,我们通过将我们的结果与GPS数据进行比较来验证这些技术,以在格陵兰兰州罗素冰川收集的GPS数据。这里呈现的方法可以应用于更好地了解冰动态信号如何在季节性时间表上传播以及控制世界冰流的机制。

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