Retrieval of atmospheric temperature and humidity profiles over a tropical coastal station from ground-based Microwave Radiometer using deep learning technique

被引:6
|
作者
Renju, R. [1 ]
Raju, C. Suresh [2 ]
Swathi, R. [3 ]
Milan, V. G. [3 ]
机构
[1] Vikram Sarabhai Space Ctr, Space Phys Lab, Thiruvananthapuram 695022, India
[2] Vikram Sarabhai Space Ctr, Space Phys Lab, Thiruvananthapuram 695022, India
[3] Sree Budha Coll Engn, Alappuzha 690503, India
关键词
Neural network; Microwave Radiometer Profiler; Retrieval; Propagation; Brightness temperature; BOUNDARY-LAYER; WATER-VAPOR;
D O I
10.1016/j.jastp.2023.106094
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
Ground-based multi-frequency microwave radiometer Profiler (Microwave Radiometer Profiler-MRP) provides valuable information on the altitude distribution of atmospheric humidity and temperature in the troposphere (upto-10 km) with high temporal resolution (of-1 min) under all-weather condition. These information are vital inputs for characterization of the atmospheric boundary layer, convective cloud systems, local weather modification and for studying the atmospheric dynamics. Potential of such radiometers are well established over the mid-latitude region. Thiruvananthapuram, located in the Indian peninsular region, is one of the first stations in the equatorial region where such an instrument made continuously operational for seven years since 2010 at the tropical coastal station. The instrument measures the brightness temperatures (Tb in Kelvin) at Ka-and V-band frequencies with a temporal resolution of-1 min. A trained back-propagation neural network technique based on the radiosonde ascends data for more than one decade obtained by India Meteorological station at Thiruvananthapuram, was used to derive the atmospheric humidity and temperature profiles. This paper presents the implementation of another retrieval technique based on deep learning approach -batch normalization and neural network (BNN) to retrieve temperature and water vapour density (WVD) profiles from Tb values during clear sky conditions and validation of the retrieval accuracies. This inversion model, much faster in computation, consists of two hidden layers and the rectified linear unit (ReLU) is used as the activation function as it can overcome the problems of saturation and vanishing gradients. The Tbs observed by radiometer are corrected by reducing the bias between the simulated Tb, using forward radiative transfer model, and the observed Tb. The validation of retrieved profiles with the radiosonde demonstrates a good retrieval capability, showing a root-mean-square error of 1.8 K for temperature, <2 g/m3 for WVD and-14% for RH.
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页数:7
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