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Arctic lead detection using a waveform mixture algorithm from CryoSat-2 data

机译:使用来自CryoSat-2数据的波形混合算法检测北极铅

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We propose a waveform mixture algorithm to detect leads from CryoSat-2 data, which is novel and different from the existing threshold-based lead detection methods. The waveform mixture algorithm adopts the concept of spectral mixture analysis, which is widely used in the field of hyperspectral image analysis. This lead detection method was evaluated with high-resolution (250 m) MODIS images and showed comparable and promising performance in detecting leads when compared to the previous methods. The robustness of the proposed approach also lies in the fact that it does not require the rescaling of parameters (i.e., stack standard deviation, stack skewness, stack kurtosis, pulse peakiness, and backscatter σsub0/sub), as it directly uses L1B waveform data, unlike the existing threshold-based methods. Monthly lead fraction maps were produced by the waveform mixture algorithm, which shows interannual variability of recent sea ice cover during?2011–2016, excluding the summer season (i.e., June to September). We also compared the lead fraction maps to other lead fraction maps generated from previously published data sets, resulting in similar spatiotemporal patterns.
机译:我们提出了一种波形混合算法,用于从CryoSat-2数据中检测铅,这是新颖的,与现有的基于阈值的铅检测方法不同。波形混合算法采用频谱混合分析的概念,在高光谱图像分析领域得到了广泛的应用。用高分辨率(250 m)MODIS图像评估了该铅检测方法,与以前的方法相比,该方法在检测铅方面表现出可比的且很有前途的性能。该方法的鲁棒性还在于它不需要重新调整参数(即,堆栈标准偏差,堆栈偏斜度,堆栈峰度,脉冲峰值和反向散射σ 0 ),因为与现有的基于阈值的方法不同,它直接使用L1B波形数据。波形混合算法产生了月度铅含量图,该图显示了2011-2016年(不包括夏季(6月至9月))近期海冰盖度的年际变化。我们还将铅分数图与从先前发布的数据集生成的其他铅分数图进行了比较,得出类似的时空模式。

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