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Using WSR-88D Polarimetric Data to Identify Bird-Contaminated Doppler Velocities
Author(s) -
Yuan Jiang,
Qin Xu,
Pengfei Zhang,
Kang Nai,
Liping Liu
Publication year - 2013
Publication title -
advances in meteorology
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.482
H-Index - 32
eISSN - 1687-9317
pISSN - 1687-9309
DOI - 10.1155/2013/769275
Subject(s) - fuzzy logic , histogram , radar , remote sensing , polarimetry , doppler effect , differential (mechanical device) , computer science , geography , meteorology , artificial intelligence , engineering , telecommunications , physics , astronomy , aerospace engineering , scattering , optics , image (mathematics)
As an important part of Doppler velocity data quality control for radar data assimilation and other quantitative applications, an automated technique is developed to identify and remove contaminated velocities by birds, especially migrating birds. This technique builds upon the existing hydrometeor classification algorithm (HCA) for dual-polarimetric WSR-88D radars developed at the National Severe Storms Laboratory, and it performs two steps. In the first step, the fuzzy-logic method in the HCA is simplified and used to identify biological echoes (mainly from birds and insects). In the second step, another simple fuzzy logic method is developed to detect bird echoes among the biological echoes identified in the first step and thus remove bird-contaminated velocities. The membership functions used by the fuzzy logic method in the second step are extracted from normalized histograms of differential reflectivity and differential phase for birds and insects, respectively, while the normalized histograms are constructed by polarimetric data collected during the 2012 fall migrating season and sorted for bird and insects, respectively. The performance and effectiveness of the technique are demonstrated by real-data examples

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