• DocumentCode
    1445285
  • Title

    Simultaneous Wind and Rain Estimation for QuikSCAT at Ultra-High Resolution

  • Author

    Owen, Michael P. ; Long, David G.

  • Author_Institution
    Microwave Earth Remote Sensing Lab., Brigham Young Univ., Provo, UT, USA
  • Volume
    49
  • Issue
    6
  • fYear
    2011
  • fDate
    6/1/2011 12:00:00 AM
  • Firstpage
    1865
  • Lastpage
    1878
  • Abstract
    Although originally designed solely for wind retrieval, the QuikSCAT scatterometer has proved to be a useful tool for rain estimation as well. Resolution enhancement algorithms designed for QuikSCAT allow for ultra-high-resolution (UHR) (2.5 km) simultaneous wind and rain (SWR) retrieval. The principle advantage of UHR SWR estimation is that compared to conventional resolution, the higher resolution allows for identification of much smaller rain events and their effects on the wind field. To enable SWR retrieval, we adjust the geophysical model function to account for rain effects such as attenuation and increased backscatter due to increased surface roughness. Two possible rain models are proposed, a phenomenological rain model and an effective rain model. Both models are compared by evaluating data fit and rain estimation performance. Comparisons of a co-located data set show that QuikSCAT UHR SWR integrated rain rates are comparable to those from tropical rain measuring mission precipitation radar (TRMM PR) but have higher variance. Buoy comparisons reveal improved wind estimates in the presence of rain. The theoretic estimator bounds are compared to both the simulated estimator variance and the actual estimator variance. The estimator bounds indicate that despite high-noise levels, wind and rain information is still retrievable at UHR, although certain directions have degraded estimator bounds. Both rain models are compared to truth data and are shown to have comparable performance for most rain rates. Comparison with buoy measurements shows that in the presence of rain, QuikSCAT UHR SWR wind estimates have less bias and variability than wind-only estimates. Although QuikSCAT UHR SWR rain estimates are noisier than TRMM PR rain rates, they provide a useful rain flag for QuikSCAT winds.
  • Keywords
    atmospheric measuring apparatus; information retrieval; rain; remote sensing by radar; surface roughness; wind; QuikSCAT UHR SWR rain estimates; TRMM PR rain rates; Tropical Rain Measuring Mission precipitation radar; attenuation; backscatter; effective rain model; phenomenological rain model; rain flag; resolution enhancement algorithms; simultaneous wind-rain retrieval; surface roughness; ultra-high resolution QuikSCAT scatterometer; wind field; Antenna measurements; Atmospheric modeling; Attenuation; Backscatter; Geophysical measurements; Rain; Spatial resolution; QuikSCAT; resolution enhancement; scatterometry; simultaneous wind/rain retrieval; wind retrieval;
  • fLanguage
    English
  • Journal_Title
    Geoscience and Remote Sensing, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0196-2892
  • Type

    jour

  • DOI
    10.1109/TGRS.2010.2102361
  • Filename
    5710413