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Ghost radiance suppression using backward ray path analysis for a Risley prism scanner of an active laser ranging
Optics Express
|March 4, 2020
Summary
This study developed an analysis method for Laser Detection and Ranging (LADAR) systems to eliminate ghost patterns. The backward ray tracing technique successfully reduced ghost reflections, improving image resolution.
Area of Science:
- Optics and Photonics
- Remote Sensing Technology
- Image Processing
Background:
- Laser Detection and Ranging (LADAR) systems can produce ghost patterns due to internal reflections.
- The presence of multiple wedge prisms in the LADAR system contributes to complex light paths and potential ghosting.
Purpose of the Study:
- To establish an efficient and thorough analysis method for identifying and mitigating ghost patterns in LADAR imagery.
- To improve the resolution and clarity of images generated by the LADAR system.
Main Methods:
- Backward ray tracing was employed to analyze instantaneous ray paths and their flux.
- Ray path histories were accumulated and categorized to understand ghost reflection origins.
- Neutral density (ND) filters and mechanical vignettes were systematically used to reduce ghost radiance.
Main Results:
- The backward ray tracing method, combined with ND filter adjustments, effectively minimized ghost radiance to below a 5° tilt angle.
- Replacing the ND filter with a mechanical vignette resulted in ghost flux being 21% of the total point cloud, closely matching the measured 19%.
- The final LADAR images exhibited significantly improved resolution with no ghost reflections in previously affected areas.
Conclusions:
- The developed ray tracing analysis method is effective in identifying and resolving ghost patterns in LADAR systems.
- The implementation of ND filters and mechanical vignettes offers a practical solution for ghost reflection mitigation.
- This approach enhances the quality and reliability of LADAR imaging for various applications.
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