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首页> 外文期刊>Journal of Hydrology >Remote sensing, hydrological modeling and in situ observations in snow cover research: A review
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Remote sensing, hydrological modeling and in situ observations in snow cover research: A review

机译:遥感,水文建模及雪覆盖研究中的原因观测:综述

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摘要

Snow is an important component of the hydrological cycle. As a major part of the cryosphere, snow cover also represents a valuable terrestrial water resource. In the context of climate change, the dynamics of snow cover play a crucial role in rebalancing the global energy and water budgets. Remote sensing, hydrological modeling and in situ observations are three techniques frequently utilized for snow cover investigations. However, the uncertainties caused by systematic errors, scale gaps, and complicated snow physics, among other factors, limit the usability of these three approaches in snow studies. In this paper, an overview of the advantages, limitations and recent progress of the three methods is presented, and more effective ways to estimate snow cover properties are evaluated. The possibility of improving remotely sensed snow information using ground-based observations is discussed. As a rapidly growing source of volunteered geographic information (VGI), web-based geotagged photos have great potential to provide ground truth data for remotely sensed products and hydrological models and thus contribute to procedures for cloud removal, correction, validation, forcing and assimilation. Finally, this review proposes a synergistic framework for the future of snow cover research. This framework highlights the cross-scale integration of in situ and remotely sensed snow measurements and the assimilation of improved remote sensing data into hydrological models.
机译:雪是水文循环的重要组成部分。作为冰冻圈的主要部分,雪覆盖也代表着一个有价值的陆地水资源。在气候变化的背景下,雪掩护的动态在重新平衡全球能源和水预算方面发挥着至关重要的作用。遥感,水文建模和原位观察是用于雪覆盖调查的三种技术。然而,系统错误,缩小差距和复杂的雪物理学引起的不确定性,以及其他因素,限制了这三种方法在雪学习中的可用性。在本文中,提出了三种方法的优点,限制和最近进展的概述,并评估了估计雪覆盖特性的更有效方法。讨论了使用地基观察改进远程感测的雪信息的可能性。作为志愿人的地理信息(VGI)的快速增长来源,基于网络的地理标记照片具有很大的潜力,可以为远程感测的产品和水文模型提供地面真理数据,从而有助于云移除,校正,验证,强制和同化的程序。最后,本综述为未来的雪覆盖研究提出了协同框架。该框架突出了原位和远程感测的雪测量的跨尺度集成以及改进的遥感数据的同化进入水文模型。

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