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首页> 外文期刊>Arabian journal of geosciences >Snow-covered area determination based on satellite-derived probabilistic snow cover maps
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Snow-covered area determination based on satellite-derived probabilistic snow cover maps

机译:基于卫星概率积雪图的积雪面积确定

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摘要

Snow-covered area (SCA) is an important component in hydrological cycle, and its importance increases as the snowmelt runoff percentage in the annual runoff volume increases. Satellite-based remote sensing can help monitor SCA. However, in operational simulations or in forecasts, either the satellite-based snow cover map may not be readily available or is affected by cloud blockage. In this study, a statistical methodology is proposed to estimate the SCA in both cases. The methodology utilizes Interactive Multi Sensor Snow and Ice Mapping System (IMS) snow cover maps and is developed over Turkey. Based on the long-term datasets of the IMS snow product, probability of snow (PS) for each IMS pixel is calculated. Probabilities that yielded minimum errors in SCA detection are used in SCA estimation. SCA map for 1 March 2013 is obtained using the PS values and is compared with the actual IMS snow cover maps. Out of 219 ground stations, 210 (95.89 %) indicated same land cover type (snowo snow) between PS and IMS-based snow cover maps. Only nine stations (4.11 %) did not match with the actual IMS snow cover map. Among these nine stations, five (2.28 %) indicated underestimation and the remaining four (1.83 %) showed overestimation. High agreement (95.89 %) among the land cover types between two snow cover maps indicates the usability of proposed methodology in snow-covered area forecasting.
机译:冰雪覆盖面积(SCA)是水文循环中的重要组成部分,并且其重要性随着雪融径流在年径流量中的百分比增加而增加。基于卫星的遥感可以帮助监视SCA。但是,在运行模拟或预测中,基于卫星的积雪地图可能不容易获得,也可能受云阻塞的影响。在这项研究中,提出了一种统计方法来估计两种情况下的SCA。该方法利用了交互式多传感器雪冰图系统(IMS)的雪盖图,并在土耳其范围内开发。基于IMS雪积的长期数据集,计算每个IMS像素的雪概率(PS)。在SCA估计中使用在SCA检测中产生最小错误的概率。使用PS值获得了2013年3月1日的SCA图,并将其与实际的IMS雪盖图进行了比较。在219个地面站中,有210个(95.89%)表示PS和基于IMS的积雪图之间的土地覆盖类型相同(雪/无雪)。只有九个台站(4.11%)与实际的IMS雪盖图不匹配。在这9个站点中,有5个(2.28%)表示被低估,其余四个(1.83%)表示被高估。两个积雪地图之间的土地覆盖类型之间的高度一致性(95.89%)表明所提出的方法在积雪覆盖地区预测中的可用性。

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