Articles | Volume 14, issue 1
https://doi.org/10.5194/amt-14-185-2021
https://doi.org/10.5194/amt-14-185-2021
Research article
 | 
12 Jan 2021
Research article |  | 12 Jan 2021

Separation of convective and stratiform precipitation using polarimetric radar data with a support vector machine method

Yadong Wang, Lin Tang, Pao-Liang Chang, and Yu-Shuang Tang

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Revised manuscript accepted for AMT
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Cited articles

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Anagnostou, E. N.: Doppler radar characteristics of precipitation at vertical incidence, Rev. Geophys. Space Phys., 11, 1–35, 2004. a, b, c
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Bringi, V. N., Chandrasekar, V., Hubbert, J., Gorgucci, E., Randeu, W. L., and Schoenhuber, M.: Raindrop size distribution in different climatic regimes from disdrometer and dual-polarized radar analysis, J. Atmos. Sci., 60, 354–365, 2003. a
Bringi, V. N., Williams, C. R., Thurai, M., and May, P. T.: Using dual-polarized radar and dual-frequency profiler for DSD characterization: a case study from Darwin, Australial, J. Atmos. Oceanic Technol., 26, 2107–2122, 2009. a, b, c
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The motivation of this work is to develop a precipitation separation approach that can be implemented on those radars with fast scanning schemes. In these schemes, the higher tilt radar data are not available, which poses a challenge for the traditional approaches. This approach uses artificial intelligence, which integrates polarimetric radar variables. The quantitative precipitation estimation will benefit from the output of this algorithm.