DocumentCode
19443
Title
Evaluation of Precipitation Estimates by at-Launch Codes of GPM/DPR Algorithms Using Synthetic Data from TRMM/PR Observations
Author
Kubota, Takuji ; Yoshida, Naofumi ; Urita, Shinji ; Iguchi, Toshio ; Seto, Shinta ; Meneghini, Robert ; Awaka, Jun ; Hanado, Hiroshi ; Kida, Satoshi ; Oki, Riko
Author_Institution
Earth Obs. Res. Center, Japan Aerosp. Exploration Agency, Tsukuba, Japan
Volume
7
Issue
9
fYear
2014
fDate
Sept. 2014
Firstpage
3931
Lastpage
3944
Abstract
The Global Precipitation Measurement (GPM) Core Observatory will carry a Dual-frequency Precipitation Radar (DPR) consisting of a Ku-band precipitation radar (KuPR) and a Ka-band precipitation radar (KaPR). In this study, “at-launch” codes of DPR precipitation algorithms, which will be used in GPM ground systems at launch, were evaluated using synthetic data based upon the Tropical Rainfall Measuring Mission (TRMM) Precipitation Radar (PR) data. Results from the codes (Version 4.20131010) of the KuPR-only, KaPR-only, and DPR algorithms were compared with “true values” calculated based upon drop size distributions assumed in the synthetic data and standard results from the TRMM algorithms at an altitude of 2 km over the ocean. The results indicate that the total precipitation amounts during April 2011 from the KuPR and DPR algorithms are similar to the true values, whereas the estimates from the KaPR data are underestimated. Moreover, the DPR estimates yielded smaller precipitation rates for rates less than about 10 mm/h and greater precipitation rates above 10 mm/h. Underestimation of the KaPR estimates was analyzed in terms of measured radar reflectivity (Zm) of the KaPR at an altitude of 2 km. The underestimation of the KaPR data was most pronounced during strong precipitation events of Zm <; 18 dBZ (high attenuation cases) over heavy precipitation areas in the Tropics, whereas the underestimation was less pronounced when the Zm > 26 (moderate attenuation cases). The results suggest that the underestimation is caused by a problem in the attenuation correction method, which was verified by the improved codes.
Keywords
atmospheric precipitation; remote sensing by radar; AD 2011 04; DPR algorithm; DPR algorithms; DPR precipitation algorithms; GPM Core Observatory; GPM-DPR algorithms; Global Precipitation Measurement; Ka-band precipitation radar; KaPR data; KaPR-only; Ku-band precipitation radar; KuPR algorithm; KuPR-only; TRMM algorithms; TRMM precipitation radar data; TRMM-PR observations; Tropical Rainfall Measuring Mission; at-Launch codes; drop size distributions; dual-frequency precipitation radar; heavy precipitation areas; precipitation estimate evaluation; precipitation rates; strong precipitation events; synthetic data; Attenuation; Extraterrestrial measurements; Geometry; Radar measurements; Sea surface; Spaceborne radar; Algorithms; Global Precipitation Measurement (GPM); Tropical Rainfall Measuring Mission (TRMM); attenuation; rain; simulation; snow; spaceborne radar;
fLanguage
English
Journal_Title
Selected Topics in Applied Earth Observations and Remote Sensing, IEEE Journal of
Publisher
ieee
ISSN
1939-1404
Type
jour
DOI
10.1109/JSTARS.2014.2320960
Filename
6820746
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