Field-of-view characteristics and resolution matching for the Global Precipitation Measurement (GPM) Microwave Imager (GMI)
Representative parameters of the scan geometry are empirically determined for the Global Precipitation Measurement (GPM) Microwave Imager (GMI). Effective fields of view (EFOVs) are computed for the GMI's 13 channels, taking into account the blurring effect of the measurement interval on the in...
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Series: | Atmospheric Measurement Techniques |
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doaj-8315a7f4e56344a6a7d08dc75528ba1c2020-11-24T23:14:22ZengCopernicus PublicationsAtmospheric Measurement Techniques1867-13811867-85482017-03-0110374575810.5194/amt-10-745-2017Field-of-view characteristics and resolution matching for the Global Precipitation Measurement (GPM) Microwave Imager (GMI)G. W. Petty0R. Bennartz1Atmospheric and Oceanic Sciences, University of Wisconsin, 1225 W. Dayton St., Madison, WI, 53706, USAEarth and Environmental Sciences, Vanderbilt University, 5726 Stevenson Center, Nashville, TN 37240, USARepresentative parameters of the scan geometry are empirically determined for the Global Precipitation Measurement (GPM) Microwave Imager (GMI). Effective fields of view (EFOVs) are computed for the GMI's 13 channels, taking into account the blurring effect of the measurement interval on the instantaneous fields of view (IFOVs). Using a Backus–Gilbert procedure, coefficients are derived that yield an approximate spatial match between synthetic EFOVs of different channels, using the 18.7 GHz channels as a target and with due consideration of the tradeoff between the quality of the fit and noise amplification and edge effects. Modest improvement in resolution is achieved for the 10.65 GHz channels, albeit with slight <q>ringing</q> in the vicinity of coastlines and other sharp brightness temperature gradients. For all other channels, resolution is coarsened to approximate the 18.7 GHz EFOV. It is shown that the resolution matching procedure reduces nonlinear correlations between channels in the presence of coastlines as well as enables the more efficient separation of large brightness temperature variations due to coastlines from the much smaller variations due to other geophysical variables. As a byproduct of this work, we report accurate EFOV resolutions as well as a self-consistent set of parameters for modeling the scan geometry of the GMI.http://www.atmos-meas-tech.net/10/745/2017/amt-10-745-2017.pdf |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
G. W. Petty R. Bennartz |
spellingShingle |
G. W. Petty R. Bennartz Field-of-view characteristics and resolution matching for the Global Precipitation Measurement (GPM) Microwave Imager (GMI) Atmospheric Measurement Techniques |
author_facet |
G. W. Petty R. Bennartz |
author_sort |
G. W. Petty |
title |
Field-of-view characteristics and resolution matching for the Global Precipitation Measurement (GPM) Microwave Imager (GMI) |
title_short |
Field-of-view characteristics and resolution matching for the Global Precipitation Measurement (GPM) Microwave Imager (GMI) |
title_full |
Field-of-view characteristics and resolution matching for the Global Precipitation Measurement (GPM) Microwave Imager (GMI) |
title_fullStr |
Field-of-view characteristics and resolution matching for the Global Precipitation Measurement (GPM) Microwave Imager (GMI) |
title_full_unstemmed |
Field-of-view characteristics and resolution matching for the Global Precipitation Measurement (GPM) Microwave Imager (GMI) |
title_sort |
field-of-view characteristics and resolution matching for the global precipitation measurement (gpm) microwave imager (gmi) |
publisher |
Copernicus Publications |
series |
Atmospheric Measurement Techniques |
issn |
1867-1381 1867-8548 |
publishDate |
2017-03-01 |
description |
Representative parameters of the scan geometry are empirically
determined for the Global Precipitation Measurement (GPM) Microwave
Imager (GMI). Effective fields of view (EFOVs) are computed for the
GMI's 13 channels, taking into account the blurring effect of the
measurement interval on the instantaneous fields of view
(IFOVs). Using a Backus–Gilbert procedure, coefficients are derived
that yield an approximate spatial match between synthetic EFOVs of
different channels, using the 18.7 GHz channels as a target and with
due consideration of the tradeoff between the quality of the fit and
noise amplification and edge effects. Modest improvement in
resolution is achieved for the 10.65 GHz channels, albeit with slight
<q>ringing</q> in the vicinity of coastlines and other sharp brightness
temperature gradients. For all other channels, resolution is coarsened
to approximate the 18.7 GHz EFOV. It is shown that the resolution
matching procedure reduces nonlinear correlations between channels in
the presence of coastlines as well as enables the more efficient
separation of large brightness temperature variations due to
coastlines from the much smaller variations due to other geophysical
variables. As a byproduct of this work, we report accurate EFOV
resolutions as well as a self-consistent set of parameters for modeling
the scan geometry of the GMI. |
url |
http://www.atmos-meas-tech.net/10/745/2017/amt-10-745-2017.pdf |
work_keys_str_mv |
AT gwpetty fieldofviewcharacteristicsandresolutionmatchingfortheglobalprecipitationmeasurementgpmmicrowaveimagergmi AT rbennartz fieldofviewcharacteristicsandresolutionmatchingfortheglobalprecipitationmeasurementgpmmicrowaveimagergmi |
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