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Summary

This study implements a phased-array antenna model for Synthetic Aperture Radar Systems (SAR) using MATLAB. The model optimizes antenna excitations for enhanced Earth observation data accuracy.

Keywords:
antenna modelbeamsexcitationsgenetic algorithmoptimizationphased arrayssatellite-based SAR

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Area of Science:

  • Remote Sensing
  • Electromagnetics
  • Antenna Theory

Background:

  • Synthetic Aperture Radar (SAR) systems are crucial for Earth observation and environmental monitoring.
  • Accurate SAR system calibration relies heavily on precise antenna models.
  • Antenna models characterize radiation patterns, gain, and overall system performance.

Purpose of the Study:

  • To describe the implementation and validation of a phased-array antenna model for SAR systems (SARAS).
  • To develop an antenna model for the Spanish Earth observation missions PAZ and PRECURSOR-ECO.
  • To focus on the Antenna Excitation Generation (AEG) module for beam pattern generation.

Main Methods:

  • Development of a phased-array antenna model in MATLAB R2024a.
  • Implementation of two modules: Antenna Pattern Generation (APG) and Antenna Excitation Generation (AEG).
  • Optimization of beam patterns using a genetic algorithm (GA) to match calculated masks.

Main Results:

  • The AEG module generates complex excitations for required beams.
  • These excitations are tailored for different satellite operational beams.
  • The process is based on radiometrically defined parameters for optimized performance.

Conclusions:

  • The developed antenna model is suitable for SAR systems, particularly for Earth observation missions.
  • The AEG module effectively generates optimized complex excitations for various beam requirements.
  • This work contributes to improving the accuracy and reliability of SAR data calibration.