Measurement and interpolation uncertainties in rainfall maps from cellular communication networks
Accurate measurements of rainfall are important in many hydrological and meteorological applications, for instance, flash-flood early-warning systems, hydraulic structures design, irrigation, weather forecasting, and climate modelling. Whenever possible, link networks measure and store the received...
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doaj-a84a24cd455443ffa21cd8a15783b9fb2020-11-24T23:01:46ZengCopernicus PublicationsHydrology and Earth System Sciences1027-56061607-79382015-08-011983571358410.5194/hess-19-3571-2015Measurement and interpolation uncertainties in rainfall maps from cellular communication networksM. F. Rios Gaona0A. Overeem1H. Leijnse2R. Uijlenhoet3Hydrology and Quantitative Water Management Group, Department of Environmental Sciences, Wageningen University, 6708 PB Wageningen, the NetherlandsHydrology and Quantitative Water Management Group, Department of Environmental Sciences, Wageningen University, 6708 PB Wageningen, the NetherlandsR&D Observations and Data Technology, Royal Netherlands Meteorological Institute, 3731 GA De Bilt, the NetherlandsHydrology and Quantitative Water Management Group, Department of Environmental Sciences, Wageningen University, 6708 PB Wageningen, the NetherlandsAccurate measurements of rainfall are important in many hydrological and meteorological applications, for instance, flash-flood early-warning systems, hydraulic structures design, irrigation, weather forecasting, and climate modelling. Whenever possible, link networks measure and store the received power of the electromagnetic signal at regular intervals. The decrease in power can be converted to rainfall intensity, and is largely due to the attenuation by raindrops along the link paths. Such an alternative technique fulfils the continuous effort to obtain measurements of rainfall in time and space at higher resolutions, especially in places where traditional rain gauge networks are scarce or poorly maintained. <br><br> Rainfall maps from microwave link networks have recently been introduced at country-wide scales. Despite their potential in rainfall estimation at high spatiotemporal resolutions, the uncertainties present in rainfall maps from link networks are not yet fully comprehended. The aim of this work is to identify and quantify the sources of uncertainty present in interpolated rainfall maps from link rainfall depths. In order to disentangle these sources of uncertainty, we classified them into two categories: (1) those associated with the individual microwave link measurements, i.e. the errors involved in link rainfall retrievals, such as wet antenna attenuation, sampling interval of measurements, wet/dry period classification, dry weather baseline attenuation, quantization of the received power, drop size distribution (DSD), and multi-path propagation; and (2) those associated with mapping, i.e. the combined effect of the interpolation methodology and the spatial density of link measurements. <br><br> We computed ~ 3500 rainfall maps from real and simulated link rainfall depths for 12 days for the land surface of the Netherlands. Simulated link rainfall depths refer to path-averaged rainfall depths obtained from radar data. The ~ 3500 real and simulated rainfall maps were compared against quality-controlled gauge-adjusted radar rainfall fields (assumed to be the ground truth). Thus, we were able to not only identify and quantify the sources of uncertainty in such rainfall maps, but also test the actual and optimal performance of one commercial microwave network from one of the cellular providers in the Netherlands. Errors in microwave link measurements were found to be the source that contributes most to the overall uncertainty.http://www.hydrol-earth-syst-sci.net/19/3571/2015/hess-19-3571-2015.pdf |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
M. F. Rios Gaona A. Overeem H. Leijnse R. Uijlenhoet |
spellingShingle |
M. F. Rios Gaona A. Overeem H. Leijnse R. Uijlenhoet Measurement and interpolation uncertainties in rainfall maps from cellular communication networks Hydrology and Earth System Sciences |
author_facet |
M. F. Rios Gaona A. Overeem H. Leijnse R. Uijlenhoet |
author_sort |
M. F. Rios Gaona |
title |
Measurement and interpolation uncertainties in rainfall maps from cellular communication networks |
title_short |
Measurement and interpolation uncertainties in rainfall maps from cellular communication networks |
title_full |
Measurement and interpolation uncertainties in rainfall maps from cellular communication networks |
title_fullStr |
Measurement and interpolation uncertainties in rainfall maps from cellular communication networks |
title_full_unstemmed |
Measurement and interpolation uncertainties in rainfall maps from cellular communication networks |
title_sort |
measurement and interpolation uncertainties in rainfall maps from cellular communication networks |
publisher |
Copernicus Publications |
series |
Hydrology and Earth System Sciences |
issn |
1027-5606 1607-7938 |
publishDate |
2015-08-01 |
description |
Accurate measurements of rainfall are important in many hydrological and
meteorological applications, for instance, flash-flood early-warning systems,
hydraulic structures design, irrigation, weather forecasting, and climate
modelling. Whenever possible, link networks measure and store the received
power of the electromagnetic signal at regular intervals. The decrease in
power can be converted to rainfall intensity, and is largely due to the
attenuation by raindrops along the link paths. Such an alternative technique
fulfils the continuous effort to obtain measurements of rainfall in time and space
at higher resolutions, especially in places where traditional rain gauge
networks are scarce or poorly maintained.
<br><br>
Rainfall maps from microwave link networks have recently been introduced at
country-wide scales. Despite their potential in rainfall estimation at high
spatiotemporal resolutions, the uncertainties present in rainfall maps from
link networks are not yet fully comprehended. The aim of this work is to
identify and quantify the sources of uncertainty present in interpolated
rainfall maps from link rainfall depths. In order to disentangle these
sources of uncertainty, we classified them into two categories: (1) those
associated with the individual microwave link measurements, i.e. the errors
involved in link rainfall retrievals, such as wet
antenna attenuation, sampling interval of measurements, wet/dry period
classification, dry weather baseline attenuation, quantization of the
received power, drop size distribution (DSD), and multi-path propagation; and
(2) those associated with mapping, i.e. the combined effect of the
interpolation methodology and the spatial density of link measurements.
<br><br>
We computed ~ 3500 rainfall maps from real and simulated link rainfall
depths for 12 days for the land surface of the Netherlands. Simulated link
rainfall depths refer to path-averaged rainfall depths obtained from radar
data. The ~ 3500 real and simulated rainfall maps were compared against
quality-controlled gauge-adjusted radar rainfall fields (assumed to be the
ground truth). Thus, we were able to not only identify and quantify the
sources of uncertainty in such rainfall maps, but also test the actual and
optimal performance of one commercial microwave network from one of the
cellular providers in the Netherlands. Errors in microwave link measurements
were found to be the source that contributes most to the overall uncertainty. |
url |
http://www.hydrol-earth-syst-sci.net/19/3571/2015/hess-19-3571-2015.pdf |
work_keys_str_mv |
AT mfriosgaona measurementandinterpolationuncertaintiesinrainfallmapsfromcellularcommunicationnetworks AT aovereem measurementandinterpolationuncertaintiesinrainfallmapsfromcellularcommunicationnetworks AT hleijnse measurementandinterpolationuncertaintiesinrainfallmapsfromcellularcommunicationnetworks AT ruijlenhoet measurementandinterpolationuncertaintiesinrainfallmapsfromcellularcommunicationnetworks |
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