Infrared Remote Sensing Using Low Noise Avalanche Photodiode Detector
Joice Mathew, James Gilbert, Robert Sharp, Alexey Grigoriev, Nicolas, Cardena, Marta Yebra

TL;DR
This paper presents a high-resolution SWIR remote sensing system using low noise avalanche photodiode detectors and AI onboard processing, enabling detailed environmental monitoring from small satellites.
Contribution
It introduces a novel high frame rate imaging approach with low noise detectors and AI integration for improved ground resolution in small satellite remote sensing.
Findings
Successful implementation of high frame rate SWIR imaging
Reduced platform motion effects on image quality
Potential for detailed bushfire fuel monitoring
Abstract
For a remote sensing optical payload to achieve a Ground Sampling Distance of ~ 10-30 m, a critical problem is platform-induced motion blur. While forward motion compensation can reduce this transit speed, it comes at the expense of a more challenging satellite attitude control system and induces a variable observation/illumination angle. This relative motion can be frozen out by simply reading the sensor system at a frame rate that matches the ground resolution element's pixel crossing time. To achieve high resolution using this Time-Delay Integration (TDI)-like approach requires high speed and hence near "zero" readout noise detector arrays to avoid swamping the observed signal. This requires associated control electronics for fast frame readout and direct interface with smart- Artificial Intelligence (AI) onboard processing. With this technique, the platform freezes out its movement…
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Taxonomy
TopicsAdvanced Optical Sensing Technologies · Remote Sensing and LiDAR Applications · 3D Surveying and Cultural Heritage
