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Calibration of Correlation Radiometers Using Pseudo-Random Noise Signals

The calibration of correlation radiometers, and particularly aperture synthesis interferometric radiometers, is a critical issue to ensure their performance. Current calibration techniques are based on the measurement of the cross-correlation of receivers’ outputs when injecting noise from a common...

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Autores principales: Pérez, Isaac Ramos, Bosch-Lluis, Xavi, Camps, Adriano, Alvarez, Nereida Rodriguez, Hernandez, Juan Fernando Marchán, Domènech, Enric Valencia, Vernich, Carlos, de la Rosa, Sonia, Pantoja, Sebastián
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Molecular Diversity Preservation International (MDPI) 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3312435/
https://www.ncbi.nlm.nih.gov/pubmed/22454576
http://dx.doi.org/10.3390/s90806131
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author Pérez, Isaac Ramos
Bosch-Lluis, Xavi
Camps, Adriano
Alvarez, Nereida Rodriguez
Hernandez, Juan Fernando Marchán
Domènech, Enric Valencia
Vernich, Carlos
de la Rosa, Sonia
Pantoja, Sebastián
author_facet Pérez, Isaac Ramos
Bosch-Lluis, Xavi
Camps, Adriano
Alvarez, Nereida Rodriguez
Hernandez, Juan Fernando Marchán
Domènech, Enric Valencia
Vernich, Carlos
de la Rosa, Sonia
Pantoja, Sebastián
author_sort Pérez, Isaac Ramos
collection PubMed
description The calibration of correlation radiometers, and particularly aperture synthesis interferometric radiometers, is a critical issue to ensure their performance. Current calibration techniques are based on the measurement of the cross-correlation of receivers’ outputs when injecting noise from a common noise source requiring a very stable distribution network. For large interferometric radiometers this centralized noise injection approach is very complex from the point of view of mass, volume and phase/amplitude equalization. Distributed noise injection techniques have been proposed as a feasible alternative, but are unable to correct for the so-called “baseline errors” associated with the particular pair of receivers forming the baseline. In this work it is proposed the use of centralized Pseudo-Random Noise (PRN) signals to calibrate correlation radiometers. PRNs are sequences of symbols with a long repetition period that have a flat spectrum over a bandwidth which is determined by the symbol rate. Since their spectrum resembles that of thermal noise, they can be used to calibrate correlation radiometers. At the same time, since these sequences are deterministic, new calibration schemes can be envisaged, such as the correlation of each receiver’s output with a baseband local replica of the PRN sequence, as well as new distribution schemes of calibration signals. This work analyzes the general requirements and performance of using PRN sequences for the calibration of microwave correlation radiometers, and particularizes the study to a potential implementation in a large aperture synthesis radiometer using an optical distribution network.
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spelling pubmed-33124352012-03-27 Calibration of Correlation Radiometers Using Pseudo-Random Noise Signals Pérez, Isaac Ramos Bosch-Lluis, Xavi Camps, Adriano Alvarez, Nereida Rodriguez Hernandez, Juan Fernando Marchán Domènech, Enric Valencia Vernich, Carlos de la Rosa, Sonia Pantoja, Sebastián Sensors (Basel) Article The calibration of correlation radiometers, and particularly aperture synthesis interferometric radiometers, is a critical issue to ensure their performance. Current calibration techniques are based on the measurement of the cross-correlation of receivers’ outputs when injecting noise from a common noise source requiring a very stable distribution network. For large interferometric radiometers this centralized noise injection approach is very complex from the point of view of mass, volume and phase/amplitude equalization. Distributed noise injection techniques have been proposed as a feasible alternative, but are unable to correct for the so-called “baseline errors” associated with the particular pair of receivers forming the baseline. In this work it is proposed the use of centralized Pseudo-Random Noise (PRN) signals to calibrate correlation radiometers. PRNs are sequences of symbols with a long repetition period that have a flat spectrum over a bandwidth which is determined by the symbol rate. Since their spectrum resembles that of thermal noise, they can be used to calibrate correlation radiometers. At the same time, since these sequences are deterministic, new calibration schemes can be envisaged, such as the correlation of each receiver’s output with a baseband local replica of the PRN sequence, as well as new distribution schemes of calibration signals. This work analyzes the general requirements and performance of using PRN sequences for the calibration of microwave correlation radiometers, and particularizes the study to a potential implementation in a large aperture synthesis radiometer using an optical distribution network. Molecular Diversity Preservation International (MDPI) 2009-08-03 /pmc/articles/PMC3312435/ /pubmed/22454576 http://dx.doi.org/10.3390/s90806131 Text en © 2009 by the authors; licensee MDPI, Basel, Switzerland This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution license (http://creativecommons.org/licenses/by/3.0/).
spellingShingle Article
Pérez, Isaac Ramos
Bosch-Lluis, Xavi
Camps, Adriano
Alvarez, Nereida Rodriguez
Hernandez, Juan Fernando Marchán
Domènech, Enric Valencia
Vernich, Carlos
de la Rosa, Sonia
Pantoja, Sebastián
Calibration of Correlation Radiometers Using Pseudo-Random Noise Signals
title Calibration of Correlation Radiometers Using Pseudo-Random Noise Signals
title_full Calibration of Correlation Radiometers Using Pseudo-Random Noise Signals
title_fullStr Calibration of Correlation Radiometers Using Pseudo-Random Noise Signals
title_full_unstemmed Calibration of Correlation Radiometers Using Pseudo-Random Noise Signals
title_short Calibration of Correlation Radiometers Using Pseudo-Random Noise Signals
title_sort calibration of correlation radiometers using pseudo-random noise signals
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC3312435/
https://www.ncbi.nlm.nih.gov/pubmed/22454576
http://dx.doi.org/10.3390/s90806131
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