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A Statistical Method for Reducing Sidelobe Clutter for the Ku-Band Precipitation Radar on Board the GPM Core ObservatoryA statistical method to reduce the sidelobe clutter of the Ku-band precipitation radar (KuPR) of the Dual-Frequency Precipitation Radar (DPR) on board the Global Precipitation Measurement (GPM) Core Observatory is described and evaluated using DPR observations. The KuPR sidelobe clutter was much more severe than that of the Precipitation Radar on board the Tropical Rainfall Measuring Mission (TRMM), and it has caused the misidentification of precipitation. The statistical method to reduce sidelobe clutter was constructed by subtracting the estimated sidelobe power, based upon a multiple regression model with explanatory variables of the normalized radar cross section (NRCS) of surface, from the received power of the echo. The saturation of the NRCS at near-nadir angles, resulting from strong surface scattering, was considered in the calculation of the regression coefficients.The method was implemented in the KuPR algorithm and applied to KuPR-observed data. It was found that the received power from sidelobe clutter over the ocean was largely reduced by using the developed method, although some of the received power from the sidelobe clutter still remained. From the statistical results of the evaluations, it was shown that the number of KuPR precipitation events in the clutter region, after the method was applied, was comparable to that in the clutter-free region. This confirms the reasonable performance of the method in removing sidelobe clutter. For further improving the effectiveness of the method, it is necessary to improve the consideration of the NRCS saturation, which will be explored in future work.
Document ID
20170003734
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Kubota, Takuji
(Japan Aerospace Exploration Agency Tsukuba, Japan)
Iguchi, Toshio
(National Inst. of Information and Communications Technology Koganei, Japan)
Kojima, Masahiro
(Japan Aerospace Exploration Agency Tsukuba, Japan)
Liao, Liang
(Morgan State Univ. Baltimore, MD, United States)
Masaki, Takeshi
(Japan Aerospace Exploration Agency Tsukuba, Japan)
Hanado, Hiroshi
(National Inst. of Information and Communications Technology Koganei, Japan)
Meneghini, Robert
(NASA Goddard Space Flight Center Greenbelt, MD United States)
Oki, Riko
(Japan Aerospace Exploration Agency Tsukuba, Japan)
Date Acquired
April 20, 2017
Publication Date
June 30, 2016
Publication Information
Publication: Journal of Atmospheric and Oceanic Technology
Publisher: AMS
Volume: 33
Issue: 7
ISSN: 0739-0572
e-ISSN: 1520-0426
Subject Category
Statistics And Probability
Earth Resources And Remote Sensing
Meteorology And Climatology
Report/Patent Number
GSFC-E-DAA-TN41883
Distribution Limits
Public
Copyright
Other
Keywords
Atm/Ocean Structure/ Phenomena; Precipitation; Observational techniques and algo

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