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A New Technique for Estimation of Surface Latent Heat Fluxes Using Satellite-Based Observations

机译:利用卫星观测估计表面潜热通量的新技术

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Monthly mean surface latent heat fluxes (LHFs) over the global oceans are estimated using bulk formula. LHFs are computed using wind speed (U) from the Special Sensor Microwave Imager (SSM/I), sea surface temperature (SST) from the Advanced Very High Resolution Radiometer (AVHRR), and near-surface specific humidity. Near-surface specific humidity (Q_a) is estimated from SSM/I-observed precipitable water (W) and AVHRR-observed SST using a genetic algorithm (GA) approach. The GA-retrieved monthly mean Q_a has an accuracy of 0.80 ± 0.32 g kg~(-1) as compared with surface marine observations based on the Comprehensive Ocean-Atmosphere Data Set (COADS). The GA approach improves upon the surface specific humidity retrieval based on regression, the EOF approach, and is comparable to the artificial neural network technique. The satellite-derived LHFs are compared with globally distributed surface marine observations to monthly averages of 1° X 1° latitude-longitude bins, during 1988-93. When GA-retrieved Q_a is used in the computation of satellite-derived latent heat fluxes (LHF_(GA)) the global mean rmse, bias, and correlation are 22 ± 8 W m~(-2), 5 W m~(-2), and 0.85, respectively, for monthly mean latent heat fluxes. The rmses in LHF are larger when Q_a is retrieved using regression and EOF approaches.
机译:使用散装公式估算了全球海洋的月平均表面潜热通量(LHF)。 LHF是使用特殊传感器微波成像仪(SSM / I)的风速(U),高级超高分辨率辐射计(AVHRR)的海面温度(SST)和近地表特定湿度来计算的。使用遗传算法(GA)方法根据SSM / I观测到的可沉淀水(W)和AVHRR观测到的SST估算近地表比湿度(Q_a)。与基于综合海洋大气数据集(COADS)的表层海洋观测相比,GA提取的月平均Q_a的精度为0.80±0.32 g kg〜(-1)。 GA方法基于EOF方法,基于回归改进了特定于表面的湿度,并且可以与人工神经网络技术相提并论。在1988-93年期间,将卫星衍生的LHF与全球分布的地面海洋观测资料相比较,得出月平均1°X 1°经纬度区间。当使用GA提取的Q_a计算卫星衍生的潜热通量(LHF_(GA))时,全局平均rmse,偏差和相关性为22±8 W m〜(-2),5 W m〜(- 2)和0.85分别表示每月平均潜热通量。当使用回归和EOF方法检索Q_a时,LHF中的均方根值较大。

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