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首页> 外文期刊>Journal of Geophysical Research, D. Atmospheres: JGR >A methodology for the validation of temperature profiles from hyperspectral infrared sounders using GPS radio occultation: Experience with AIRS and COSMIC
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A methodology for the validation of temperature profiles from hyperspectral infrared sounders using GPS radio occultation: Experience with AIRS and COSMIC

机译:使用GPS无线电掩星从高光谱红外测深仪验证温度剖面的方法:AIRS和COSMIC的经验

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This paper presents a methodology for the validation of vertical temperature profile retrievals from infrared andmicrowave sounders by intercomparison with Global Positioning System (GPS) radio occultation (RO) profiles matched in time and space. GPS RO provides an estimate of atmospheric temperature with a traceable path to absolute standards and well-characterized structural uncertainty. While the radiosonde network is a longstanding validation reference for sounder temperature profile retrievals, GPS RO has the advantage of homogeneous global coverage that is unbiased toward land or ocean and has the potential of high absolute accuracy in the upper troposphere to middle stratosphere where little water vapor is present. The polar orbiting sounders utilize cross-track scanning in highly repeatable Sun-synchronous orbits, while GPS RO is characterized by pseudorandom sampling in time and space. A comparison approach is described which minimizes sampling uncertainties. The impact of including the horizontal averaging inherent in the RO measurements on the statistical validation is shown. In order to demonstrate the method, bias and RMS vertical profiles have been created for global latitude zones for a range of time intervals using NASA Atmospheric Infrared Sounder (AIRS) Level 2 products compared to dry temperature measurements made by the U.S./Taiwan Constellation Observing System forMeteorology, Ionosphere and Climate (COSMIC) network. The bias and RMS error profiles are shown to depend strongly on the vertical averaging applied to the difference profiles but are relatively insensitive to horizontal and temporal mismatch.
机译:本文提出了一种通过与在时间和空间上匹配的全球定位系统(GPS)无线电掩星(RO)廓线进行比对来验证从红外和微波测深仪获取的垂直温度廓线的验证方法。 GPS RO提供了对大气温度的估计,并且可以追溯到绝对标准和特征明确的结构不确定性。虽然无线电探空仪网络是长期以来进行更合理的温度廓线验证的验证参考,但GPS RO具有均匀的全球覆盖范围优势,且不偏向陆地或海洋,并且在对流层高层至平流层中(水蒸气很少)具有很高的绝对精度存在。极地轨道发声器在高度可重复的太阳同步轨道中利用跨轨扫描,而GPS RO的特征是在时间和空间上进行伪随机采样。描述了一种比较方法,可以最大程度地减少采样不确定性。显示了将RO测量中固有的水平平均包括在内对统计验证的影响。为了演示该方法,与美国/台湾星座观测系统进行的干温度测量相比,使用NASA大气红外测深仪(AIRS)2级产品在一定时间范围内为全球纬度区域创建了偏差和RMS垂直剖面。气象,电离层和气候(COSMIC)网络。偏差和RMS误差曲线显示出强烈依赖于应用于差异曲线的垂直平均,但对水平和时间失配相对不敏感。

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