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A cloud-free MODIS snow cover dataset for the contiguous United States from 2000 to 2017

机译:2000年至2017年连续美国的无云MODIS雪盖数据集

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摘要

This article presents a cloud-free snow cover dataset with a daily temporal resolution and 0.05° spatial resolution from March 2000 to February 2017 over the contiguous United States (CONUS). The dataset was developed by completely removing clouds from the original NASA’s Moderate Resolution Imaging Spectroradiometer (MODIS) Snow Cover Area product (MOD10C1) through a series of spatiotemporal filters followed by the Variational Interpolation (VI) algorithm; the filters and VI algorithm were evaluated using bootstrapping test. The dataset was validated over the period with the Landsat 7 ETM+ snow cover maps in the Seattle, Minneapolis, Rocky Mountains, and Sierra Nevada regions. The resulting cloud-free snow cover captured accurately dynamic changes of snow throughout the period in terms of Probability of Detection (POD) and False Alarm Ratio (FAR) with average values of 0.955 and 0.179 for POD and FAR, respectively. The dataset provides continuous inputs of snow cover area for hydrologic studies for almost two decades. The VI algorithm can be applied in other regions given that a proper validation can be performed.
机译:本文介绍了从2000年3月到2017年2月,连续美国(CONUS)的每日时间分辨率和0.05°空间分辨率的无云积雪数据集。该数据集的开发是通过一系列时空滤波器,然后采用变分插值(VI)算法,将原始NASA中分辨率成像光谱仪(MODIS)积雪面积产品(MOD10C1)中的云完全去除;使用自举测试评估过滤器和VI算法。该数据集在此期间已使用西雅图,明尼阿波利斯,落基山脉和内华达山脉地区的Landsat 7 ETM +雪盖地图进行了验证。由此产生的无云积雪可以准确地捕获整个时期的雪的动态变化,其检测概率(POD)和误报率(FAR)的平均值分别为POD和FAR的0.955和0.179。该数据集为水文研究提供了连续近两年的积雪面积连续输入。如果可以执行适当的验证,则VI算法可以应用于其他区域。

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