PAU/GNSS-R: Implementation, Performance and First Results of a Real-Time Delay-Doppler Map Reflectometer Using Global Navigation Satellite System Signals

Signals from Global Navigation Satellite Systems (GNSS) were originally conceived for position and speed determination, but they can be used as signals of opportunity as well. The reflection process over a given surface modifies the properties of the scattered signal, and therefore, by processing th...

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Published in:Sensors
Main Authors: Juan Fernando Marchan-Hernandez, Adriano Camps, Nereida Rodriguez-Alvarez, Xavier Bosch-Lluis, Isaac Ramos-Perez, Enric Valencia
Format: Text
Language:English
Published: Molecular Diversity Preservation International 2008
Subjects:
Online Access:https://doi.org/10.3390/s8053005
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author Juan Fernando Marchan-Hernandez
Adriano Camps
Nereida Rodriguez-Alvarez
Xavier Bosch-Lluis
Isaac Ramos-Perez
Enric Valencia
author_facet Juan Fernando Marchan-Hernandez
Adriano Camps
Nereida Rodriguez-Alvarez
Xavier Bosch-Lluis
Isaac Ramos-Perez
Enric Valencia
author_sort Juan Fernando Marchan-Hernandez
collection MDPI Open Access Publishing
container_issue 5
container_start_page 3005
container_title Sensors
container_volume 8
description Signals from Global Navigation Satellite Systems (GNSS) were originally conceived for position and speed determination, but they can be used as signals of opportunity as well. The reflection process over a given surface modifies the properties of the scattered signal, and therefore, by processing the reflected signal, relevant geophysical data regarding the surface under study (land, sea, ice…) can be retrieved. In essence, a GNSS-R receiver is a multi-channel GNSS receiver that computes the received power from a given satellite at a number of different delay and Doppler bins of the incoming signal. The first approaches to build such a receiver consisted of sampling and storing the scattered signal for later post-processing. However, a real-time approach to the problem is desirable to obtain immediately useful geophysical variables and reduce the amount of data. The use of FPGA technology makes this possible, while at the same time the system can be easily reconfigured. The signal tracking and processing constraints made necessary to fully design several new blocks. The uniqueness of the implemented system described in this work is the capability to compute in real-time Delay-Doppler maps (DDMs) either for four simultaneous satellites or just one, but with a larger number of bins. The first tests have been conducted from a cliff over the sea and demonstrate the successful performance of the instrument to compute DDMs in real-time from the measured reflected GNSS/R signals. The processing of these measurements shall yield quantitative relationships between the sea state (mainly driven by the surface wind and the swell) and the overall DDM shape. The ultimate goal is to use the DDM shape to correct the sea state influence on the L-band brightness temperature to improve the retrieval of the sea surface salinity (SSS).
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spelling ftmdpi:oai:mdpi.com:/1424-8220/8/5/3005/ 2025-01-17T00:46:05+00:00 PAU/GNSS-R: Implementation, Performance and First Results of a Real-Time Delay-Doppler Map Reflectometer Using Global Navigation Satellite System Signals Juan Fernando Marchan-Hernandez Adriano Camps Nereida Rodriguez-Alvarez Xavier Bosch-Lluis Isaac Ramos-Perez Enric Valencia 2008-05-06 application/pdf https://doi.org/10.3390/s8053005 EN eng Molecular Diversity Preservation International Remote Sensors https://dx.doi.org/10.3390/s8053005 https://creativecommons.org/licenses/by/3.0/ Sensors; Volume 8; Issue 5; Pages: 3005-3019 GPS reflectometry Delay-Doppler Maps (DDM) sea state digital design embedded system real-time field-programmable gate array (FPGA) Text 2008 ftmdpi https://doi.org/10.3390/s8053005 2023-07-31T20:21:42Z Signals from Global Navigation Satellite Systems (GNSS) were originally conceived for position and speed determination, but they can be used as signals of opportunity as well. The reflection process over a given surface modifies the properties of the scattered signal, and therefore, by processing the reflected signal, relevant geophysical data regarding the surface under study (land, sea, ice…) can be retrieved. In essence, a GNSS-R receiver is a multi-channel GNSS receiver that computes the received power from a given satellite at a number of different delay and Doppler bins of the incoming signal. The first approaches to build such a receiver consisted of sampling and storing the scattered signal for later post-processing. However, a real-time approach to the problem is desirable to obtain immediately useful geophysical variables and reduce the amount of data. The use of FPGA technology makes this possible, while at the same time the system can be easily reconfigured. The signal tracking and processing constraints made necessary to fully design several new blocks. The uniqueness of the implemented system described in this work is the capability to compute in real-time Delay-Doppler maps (DDMs) either for four simultaneous satellites or just one, but with a larger number of bins. The first tests have been conducted from a cliff over the sea and demonstrate the successful performance of the instrument to compute DDMs in real-time from the measured reflected GNSS/R signals. The processing of these measurements shall yield quantitative relationships between the sea state (mainly driven by the surface wind and the swell) and the overall DDM shape. The ultimate goal is to use the DDM shape to correct the sea state influence on the L-band brightness temperature to improve the retrieval of the sea surface salinity (SSS). Text Sea ice MDPI Open Access Publishing Sensors 8 5 3005 3019
spellingShingle GPS reflectometry
Delay-Doppler Maps (DDM)
sea state
digital design
embedded system
real-time
field-programmable gate array (FPGA)
Juan Fernando Marchan-Hernandez
Adriano Camps
Nereida Rodriguez-Alvarez
Xavier Bosch-Lluis
Isaac Ramos-Perez
Enric Valencia
PAU/GNSS-R: Implementation, Performance and First Results of a Real-Time Delay-Doppler Map Reflectometer Using Global Navigation Satellite System Signals
title PAU/GNSS-R: Implementation, Performance and First Results of a Real-Time Delay-Doppler Map Reflectometer Using Global Navigation Satellite System Signals
title_full PAU/GNSS-R: Implementation, Performance and First Results of a Real-Time Delay-Doppler Map Reflectometer Using Global Navigation Satellite System Signals
title_fullStr PAU/GNSS-R: Implementation, Performance and First Results of a Real-Time Delay-Doppler Map Reflectometer Using Global Navigation Satellite System Signals
title_full_unstemmed PAU/GNSS-R: Implementation, Performance and First Results of a Real-Time Delay-Doppler Map Reflectometer Using Global Navigation Satellite System Signals
title_short PAU/GNSS-R: Implementation, Performance and First Results of a Real-Time Delay-Doppler Map Reflectometer Using Global Navigation Satellite System Signals
title_sort pau/gnss-r: implementation, performance and first results of a real-time delay-doppler map reflectometer using global navigation satellite system signals
topic GPS reflectometry
Delay-Doppler Maps (DDM)
sea state
digital design
embedded system
real-time
field-programmable gate array (FPGA)
topic_facet GPS reflectometry
Delay-Doppler Maps (DDM)
sea state
digital design
embedded system
real-time
field-programmable gate array (FPGA)
url https://doi.org/10.3390/s8053005