首页> 外文会议>Atmospheric and environmental remote sensing data processing and utilization VI: Readiness for GEOSS IV >Validation of the MODIS albedo product and improving the snow albedo retrieval with additional AMSR-E data in Qinghai-Tibet Plateau
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Validation of the MODIS albedo product and improving the snow albedo retrieval with additional AMSR-E data in Qinghai-Tibet Plateau

机译:利用青藏高原的AMSR-E附加数据验证MODIS反照率产品并改善雪反照率

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摘要

Land surface albedo is crucial for land surface radiation and energy budgets. In this study we compared the MODIS 16-day albedo product (MCD43A3) with field-measured data in Qinghai-Tibet Plateau. The validation data were used from 4 automatic weather stations(AWS) locations, spanning the year 2002-2008. Results indicate that MCD43A3rnalbedo product in snow-free seasons is in good agreement with ground-based observations, with a bias of ±0.02-0.05.rnBut in snow season of Qinghai-Tibet Plateau, the MCD43A3 albedo product reaches a high bias. One of the possible reasons is that the amount of bidirectional reflectance observations may not be sufficient for getting the high quality surface albedo retrieval because of cloudy weather during the snowing days. Another reason may be that the heterogeneity of snow surface and complexity of snow grain. It is well known that the snow albedo is influenced by many parameters. However, the accumulated daily maximum temperature is shown to be a good predictor of the snow albedo. And also the snow albedo may effected by snow depth and snow water equivalent. In this paper, we improved a snow albedo retrieval model through daily maximum temperature from AWS and SWE from AMSR-E which can provide time series observations during snowing and snowmelt period. Also the AMSR-E SWE product has a coarse-resolution (25km) and has some uncertainties, the results show better correlation with the field-measured snow surface albedo. The 16-day average value of this algorithm performs well when there is snow in spring.
机译:地表反照率对于地表辐射和能源预算至关重要。在这项研究中,我们将MODIS 16天反照率产品(MCD43A3)与青藏高原的实测数据进行了比较。验证数据来自2002-2008年的4个自动气象站(AWS)位置。结果表明,在无雪季节MCD43A3反照率积与地面观测值吻合良好,偏差为±0.02-0.05。但是在青藏高原的积雪季节,MCD43A3反照率积达到了较高的偏差。可能的原因之一是,由于下雪天的多云天气,双向反射观测值的数量可能不足以获取高质量的表面反照率。另一个原因可能是雪面的异质性和雪粒的复杂性。众所周知,雪反照率受许多参数影响。然而,累积的每日最高温度被证明是雪反照率的良好预测指标。而且雪反照率也可能受雪深和雪水当量的影响。在本文中,我们通过AWS和AMSR-E的SWE的每日最高温度改进了雪反照率反演模型,该模型可提供下雪和融雪期间的时间序列观测。另外,AMSR-E SWE产品的分辨率较粗(25 km),并且存在一些不确定性,结果显示与实地测得的雪面反照率具有更好的相关性。春季有雪时,此算法的16天平均值效果很好。

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  • 来源
  • 会议地点 San Diego CA(US)
  • 作者单位

    State Key Laboratory of Remote Sensing Science, Jointly Sponsored by Beijing Normal University and Institute of Remote Sensing Applications, CAS School of Surveying and Land Information Engineering, Henan Ploytechnic University,Jiaozuo,454000,China Research Center for Remote Sensing and GIS, School of Geography, Beijing Key Laboratory for Remote Sensing of Environment and Digital Cities, Beijing Normal University, 100875, China;

    State Key Laboratory of Remote Sensing Science, Jointly Sponsored by Beijing Normal University and Institute of Remote Sensing Applications, CAS Research Center for Remote Sensing and GIS, School of Geography, Beijing Key Laboratory for Remote Sensing of Environment and Digital Cities, Beijing Normal University, 100875, China;

    State Key Laboratory of Remote Sensing Science, Jointly Sponsored by Beijing Normal University and Institute of Remote Sensing Applications, CAS Research Center for Remote Sensing and GIS, School of Geography, Beijing Key Laboratory for Remote Sensing of Environment and Digital Cities, Beijing Normal University, 100875, China;

    State Key Laboratory of Remote Sensing Science, Jointly Sponsored by Beijing Normal University and Institute of Remote Sensing Applications, CAS Research Center for Remote Sensing and GIS, School of Geography, Beijing Key Laboratory for Remote Sensing of Environment and Digital Cities, Beijing Normal University, 100875, China;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 大气遥感;
  • 关键词

    Qinghai-Tibet Plateau; Albedo; MODIS; Snow albedo retrieval; AMSR-E;

    机译:青藏高原反照率; MODIS;雪反照率检索; AMSR-E;

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