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Image transfer through cirrus clouds. II. Wave-front segmentation and imaging.

Barbara T Landesman1, Charles L Matson

  • 1Lockheed Martin Space Systems Company, 1155 University Boulevard SE, Albuquerque, New Mexico 87106, USA. barbara.t.landesman@lmco.com

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|January 4, 2003
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Summary

This study introduces a hybrid simulation technique for imaging space objects through cirrus clouds. The method combines Huygens-Fresnel propagation with a novel vector trace approach for improved clarity.

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Area of Science:

  • Optics
  • Remote Sensing
  • Atmospheric Science

Background:

  • Cirrus clouds significantly impede optical imaging of space-based objects.
  • Accurate simulation of wave propagation through clouds is crucial for remote sensing applications.

Purpose of the Study:

  • To develop and present a hybrid simulation technique for imaging space objects through cirrus clouds.
  • To evaluate the effectiveness of the proposed method under varying cloud optical depths.

Main Methods:

  • A hybrid approach combining standard Huygens-Fresnel propagation and a novel vector trace method within the cloud.
  • Utilizing the Coherent Illumination Ray Trace and Imaging Software for Cirrus (CIRIS) for vector transmission.
  • Reconstructing the wavefront at the cloud base using output vector distribution.

Main Results:

  • The simulation successfully generates images of space-based objects as seen through cirrus clouds.
  • Comparison with diffraction-limited images highlights the impact of cirrus clouds on image quality.
  • The technique allows for analysis across different cloud optical depths.

Conclusions:

  • The presented hybrid technique offers a viable method for simulating space-based object imaging through cirrus clouds.
  • The vector trace approach within CIRIS is effective for modeling wave propagation in cloudy atmospheres.
  • Further research could incorporate atmospheric turbulence effects for more comprehensive simulations.