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Related Experiment Video

Updated: Sep 26, 2025

Tracking Infiltration Front Depth Using Time-lapse Multi-offset Gathers Collected with Array Antenna Ground Penetrating Radar
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Multifunctional Scatterometer System for Measuring Physical Oceanographic Parameters Using Range-Doppler FMCW Radar.

Ji-Hwan Hwang1, Duk-Jin Kim2, Ki-Mook Kang3

  • 1Research Institute of Basic Sciences, Seoul National University, Seoul 88026, Korea.

Sensors (Basel, Switzerland)
|April 23, 2022
PubMed
Summary

This study introduces an integrated radar system for simultaneous oceanographic measurements. The new system efficiently collects sea surface data, improving upon separate, less efficient methods.

Keywords:
FMCW radarmultifunctional scatterometerocean observationrange-doppler process

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Area of Science:

  • Oceanography
  • Remote Sensing
  • Radar Systems

Background:

  • Current microwave remote sensing for sea surface monitoring uses multiple separate systems (scatterometer, altimeter, Doppler radar).
  • This fragmentation leads to inefficiencies in system operation and challenges in cross-analyzing observational data.

Purpose of the Study:

  • To develop and validate a multifunctional scatterometer system with optimized radar signal processing.
  • The system aims for simultaneous observation of various physical oceanographic parameters, enhancing efficiency and data integration.

Main Methods:

  • Integrated separate measurement functions into a single system by adding Doppler frequency measurement capabilities.
  • Utilized frequency modulated continuous wave (FMCW) radar signal sampling as 2D raw data (fast-time and slow-time samples).
  • Employed Fourier transform-based range-Doppler signal processing to extract distance (R), backscattering (σ°), and Doppler frequency (f).

Main Results:

  • Successfully enabled simultaneous measurement of sea surface range, polarimetric backscattering, and movement (Doppler frequency).
  • Field campaigns (2017-2020) validated system operability and cross-analyzed radar data with in-situ measurements.
  • Achieved observational accuracies: Tidal level (RMSE 0.169 m), significant wave height (RMSE 0.127 m), wind speed (RMSE 1.880 m/s), and wind direction (18.84°).

Conclusions:

  • The proposed integrated scatterometer system offers an efficient and effective solution for simultaneous oceanographic parameter observation.
  • The system's ability to combine range, backscattering, and Doppler measurements improves data analysis and accuracy compared to separate systems.