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Faraday rotation correction for the ESA BIOMASS P-band synthetic aperture radar

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Faraday rotation correction for the ESA BIOMASS P-band synthetic aperture radar. / Rogers, Neil; Quegan, Shaun.
7th European Conference on Antennas and Propagation (EUCAP 2013) - Convened Sessions. IEEE, 2013. p. 3919 - 3923.

Research output: Contribution in Book/Report/Proceedings - With ISBN/ISSNConference contribution/Paperpeer-review

Harvard

Rogers, N & Quegan, S 2013, Faraday rotation correction for the ESA BIOMASS P-band synthetic aperture radar. in 7th European Conference on Antennas and Propagation (EUCAP 2013) - Convened Sessions. IEEE, pp. 3919 - 3923, Antennas and Propagation (EuCAP), 2013 7th European Conference on, Gothenburg, Sweden, 8/04/13. <http://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=6547044&isnumber=6546197>

APA

Rogers, N., & Quegan, S. (2013). Faraday rotation correction for the ESA BIOMASS P-band synthetic aperture radar. In 7th European Conference on Antennas and Propagation (EUCAP 2013) - Convened Sessions (pp. 3919 - 3923). IEEE. http://ieeexplore.ieee.org/stamp/stamp.jsp?tp=&arnumber=6547044&isnumber=6546197

Vancouver

Rogers N, Quegan S. Faraday rotation correction for the ESA BIOMASS P-band synthetic aperture radar. In 7th European Conference on Antennas and Propagation (EUCAP 2013) - Convened Sessions. IEEE. 2013. p. 3919 - 3923

Author

Rogers, Neil ; Quegan, Shaun. / Faraday rotation correction for the ESA BIOMASS P-band synthetic aperture radar. 7th European Conference on Antennas and Propagation (EUCAP 2013) - Convened Sessions. IEEE, 2013. pp. 3919 - 3923

Bibtex

@inproceedings{8c2b9ec68e1746c8a9301622193eafb5,
title = "Faraday rotation correction for the ESA BIOMASS P-band synthetic aperture radar",
abstract = "The proposed European Space Agency (ESA) BIOMASS satellite will comprise a P-band (435 MHz) polarimetric synthetic aperture radar (SAR). Its primary objective is to determine forest biomass density by correlation with the backscatter intensity and covariances of SAR images measured in four polarization channels - HH, HV, VH, and VV - together with height measurements from polarimetric interferometry. Faraday rotation (FR) in the ionosphere alters the balance in the polarimetric channels, thus affecting the accuracy of derived biomass density measurements. The accuracy of five techniques for estimating FR from polarimetric SAR images has been assessed using simulated images of boreal forest with a range of biomass densities, FR angles and system errors. The latter include H/V channel imbalances, antenna cross-talk and noise. FR estimation errors due to channel imbalances up to 0.1 dB are found to be negligible but all methods have biases dependent on the FR and the relative phases of the cross-talk components. However, the best-performing estimator corrects to better than 4° under worst-case system errors, so the accuracy of biomass density estimates will not be significantly affected. Under conditions of low signal-to-noise, the FR estimate must employ maximum likelihood averaging to prevent an unacceptable bias towards the independent FR estimate, which is used to resolve a π/2 angle ambiguity. Further simulations illustrate correction performance for structured images (from an L-band satellite SAR) and the application of large sinusoidal FR perturbations in the image (simulating non-uniform ionospheric perturbations).",
author = "Neil Rogers and Shaun Quegan",
year = "2013",
language = "English",
isbn = "9781467321877 ",
pages = "3919 -- 3923",
booktitle = "7th European Conference on Antennas and Propagation (EUCAP 2013) - Convened Sessions",
publisher = "IEEE",
note = "Antennas and Propagation (EuCAP), 2013 7th European Conference on ; Conference date: 08-04-2013 Through 12-04-2013",

}

RIS

TY - GEN

T1 - Faraday rotation correction for the ESA BIOMASS P-band synthetic aperture radar

AU - Rogers, Neil

AU - Quegan, Shaun

PY - 2013

Y1 - 2013

N2 - The proposed European Space Agency (ESA) BIOMASS satellite will comprise a P-band (435 MHz) polarimetric synthetic aperture radar (SAR). Its primary objective is to determine forest biomass density by correlation with the backscatter intensity and covariances of SAR images measured in four polarization channels - HH, HV, VH, and VV - together with height measurements from polarimetric interferometry. Faraday rotation (FR) in the ionosphere alters the balance in the polarimetric channels, thus affecting the accuracy of derived biomass density measurements. The accuracy of five techniques for estimating FR from polarimetric SAR images has been assessed using simulated images of boreal forest with a range of biomass densities, FR angles and system errors. The latter include H/V channel imbalances, antenna cross-talk and noise. FR estimation errors due to channel imbalances up to 0.1 dB are found to be negligible but all methods have biases dependent on the FR and the relative phases of the cross-talk components. However, the best-performing estimator corrects to better than 4° under worst-case system errors, so the accuracy of biomass density estimates will not be significantly affected. Under conditions of low signal-to-noise, the FR estimate must employ maximum likelihood averaging to prevent an unacceptable bias towards the independent FR estimate, which is used to resolve a π/2 angle ambiguity. Further simulations illustrate correction performance for structured images (from an L-band satellite SAR) and the application of large sinusoidal FR perturbations in the image (simulating non-uniform ionospheric perturbations).

AB - The proposed European Space Agency (ESA) BIOMASS satellite will comprise a P-band (435 MHz) polarimetric synthetic aperture radar (SAR). Its primary objective is to determine forest biomass density by correlation with the backscatter intensity and covariances of SAR images measured in four polarization channels - HH, HV, VH, and VV - together with height measurements from polarimetric interferometry. Faraday rotation (FR) in the ionosphere alters the balance in the polarimetric channels, thus affecting the accuracy of derived biomass density measurements. The accuracy of five techniques for estimating FR from polarimetric SAR images has been assessed using simulated images of boreal forest with a range of biomass densities, FR angles and system errors. The latter include H/V channel imbalances, antenna cross-talk and noise. FR estimation errors due to channel imbalances up to 0.1 dB are found to be negligible but all methods have biases dependent on the FR and the relative phases of the cross-talk components. However, the best-performing estimator corrects to better than 4° under worst-case system errors, so the accuracy of biomass density estimates will not be significantly affected. Under conditions of low signal-to-noise, the FR estimate must employ maximum likelihood averaging to prevent an unacceptable bias towards the independent FR estimate, which is used to resolve a π/2 angle ambiguity. Further simulations illustrate correction performance for structured images (from an L-band satellite SAR) and the application of large sinusoidal FR perturbations in the image (simulating non-uniform ionospheric perturbations).

M3 - Conference contribution/Paper

SN - 9781467321877

SP - 3919

EP - 3923

BT - 7th European Conference on Antennas and Propagation (EUCAP 2013) - Convened Sessions

PB - IEEE

T2 - Antennas and Propagation (EuCAP), 2013 7th European Conference on

Y2 - 8 April 2013 through 12 April 2013

ER -