Implementing Quality Control of High-Frequency Radar Estimates and Application to Gulf Stream Surface Currents

被引:21
|
作者
Haines, Sara [1 ]
Seim, Harvey [1 ]
Muglia, Mike [2 ]
机构
[1] Univ North Carolina Chapel Hill, Dept Marine Sci, Chapel Hill, NC 27599 USA
[2] Univ N Carolina, Coastal Studies Inst, Wanchese, NC USA
关键词
OCEAN OBSERVING SYSTEM; CAPE-HATTERAS; HF RADAR; NETWORK; AGREEMENT; FLORIDA; SHELF;
D O I
10.1175/JTECH-D-16-0203.1
中图分类号
P75 [海洋工程];
学科分类号
0814 ; 081505 ; 0824 ; 082401 ;
摘要
Quality control procedures based on nonvelocity parameters for use with a short-range radar system are applied with slight modification to long-range radar data collected offshore of North Carolina. The radar footprint covers shelf and slope environments and includes a segment of the Gulf Stream (GS). Standard processed and quality controlled (QCD) radar data are compared with 4 months of acoustic Doppler current profiler (ADCP) time series collected at three different sites within the radar footprint. Two of the ADCP records are from the shelf and the third is on the upper slope and is frequently within the GS. Linear regression and Bland-Altman diagrams are used to quantify the comparison. QCD data at all sites have reduced scatter and improved correlation with ADCP observations relative to standard processed data. Uncertainty is reduced by approximately 20%, and linear regression slopes and correlation coefficients increase by about 0.1. At the upper slope site, the QCD data also produced a significant increase in the mean speed. Additionally, a significant increase, averaging roughly 20%, in mean speed in the GS is apparent when comparing standard processed data and QCD data, concentrated at large range and at the azimuthal extremes of radial site coverage. Shifts in the distributions of the standard processed and QCDvelocity estimates are consistent with the removal of zero-mean noise from the observations, which has minimal impact where the radial site range is <70 km and a large impact at greater range in the GS where mean currents exceed 1ms(-1).
引用
收藏
页码:1207 / 1224
页数:18
相关论文
共 50 条
  • [1] Very high-frequency radar mapping of surface currents
    Shay, LK
    Cook, TM
    Peters, H
    Mariano, AJ
    Weisberg, R
    An, E
    Soloviev, A
    Luther, M
    IEEE JOURNAL OF OCEANIC ENGINEERING, 2002, 27 (02) : 155 - 169
  • [2] High-Frequency Radar Observations of Ocean Surface Currents
    Paduan, Jeffrey D.
    Washburn, Libe
    ANNUAL REVIEW OF MARINE SCIENCE, VOL 5, 2013, 5 : 115 - 136
  • [3] High-frequency radar mapping of surface currents using WERA
    Shay, Lynn K.
    Martinez-Pedraja, Jorge
    Cook, Thomas M.
    Haus, Brian K.
    Weisberg, Robert H.
    JOURNAL OF ATMOSPHERIC AND OCEANIC TECHNOLOGY, 2007, 24 (03) : 484 - 503
  • [4] A Real-Time and Offline Quality Control Methodology for SeaSonde High-Frequency Radar Currents
    Cosoli, Simone
    Bolzon, Giorgio
    Mazzoldi, Andrea
    JOURNAL OF ATMOSPHERIC AND OCEANIC TECHNOLOGY, 2012, 29 (09) : 1313 - 1328
  • [5] Measurements of Ocean Surface Currents Using Shipborne High-Frequency Radar
    Chang, Guanghong
    Li, Ming
    Zhang, Ling
    Ji, Yonggang
    Xie, Junhao
    2014 IEEE RADAR CONFERENCE, 2014, : 1067 - 1070
  • [6] Multistatic estimation of high-frequency radar surface currents in the region of Toulon
    Dylan Dumas
    Anthony Gramoullé
    Charles-Antoine Guérin
    Anne Molcard
    Yann Ourmières
    Bruno Zakardjian
    Ocean Dynamics, 2020, 70 : 1485 - 1503
  • [7] Variational interpolation of high-frequency radar surface currents using DIVAnd
    Alexander Barth
    Charles Troupin
    Emma Reyes
    Aida Alvera-Azcárate
    Jean-Marie Beckers
    Joaquín Tintoré
    Ocean Dynamics, 2021, 71 : 293 - 308
  • [8] Multistatic estimation of high-frequency radar surface currents in the region of Toulon
    Dumas, Dylan
    Gramoulle, Anthony
    Guerin, Charles-Antoine
    Molcard, Anne
    Ourmieres, Yann
    Zakardjian, Bruno
    OCEAN DYNAMICS, 2020, 70 (12) : 1485 - 1503
  • [9] Variational interpolation of high-frequency radar surface currents using DIVAnd
    Barth, Alexander
    Troupin, Charles
    Reyes, Emma
    Alvera-Azcarate, Aida
    Beckers, Jean-Marie
    Tintore, Joaquin
    OCEAN DYNAMICS, 2021, 71 (03) : 293 - 308
  • [10] Remote sensing of surface currents with single shipborne high-frequency surface wave radar
    Wang, Zhongbao
    Xie, Junhao
    Ji, Zhenyuan
    Quan, Taifan
    OCEAN DYNAMICS, 2016, 66 (01) : 27 - 39