Projekt
Artificial Intelligence for Adaptive Optics
With the rapid expansion of human activities in space, whether it be manned missions, communication satellites, constellations for Earth observation, or New Space initiatives, the management of the space domain is becoming increasingly complex. This increased complexity necessitates enhanced space surveillance to ensu…
With the rapid expansion of human activities in space, whether it be manned missions, communication satellites, constellations for Earth observation, or New Space initiatives, the management of the space domain is becoming increasingly complex. This increased complexity necessitates enhanced space surveillance to ensure the security of orbital infrastructures. Optics, and more specifically adaptive optics (AO), offer considerable potential for monitoring space objects with high resolution. Adaptive optics is a key technology for correcting the effects of atmospheric turbulence, thereby enabling detailed imaging from ground-based telescopes. Today, AO is integrated into all major ground-based telescopes. With the construction of the Extremely Large Telescope (ELT), AO has become indispensable. Equipped with ultra-high-performance AO, the ELT opens up fascinating prospects, such as detecting Earth-like planets and potentially analyzing their atmospheres. AO also plays a strategic role in space surveillance, particularly in observing satellites and securing optical communications between the ground and satellites. By improving angular resolution, AO allows for the distinction of details such as solar panels, antennas, or variations in satellite shapes. It also facilitates the detection of changes, such as mechanical degradations or malfunctions, and enhances astrometric precision for determining orbits. These capabilities are essential for monitoring abnormal behaviors and identifying potentially hostile satellites. The PROVIDENCE platform, developed by ONERA, aims to address these challenges by providing high angular resolution observation, classification, identification, characterization, and surveillance capabilities for low Earth orbit. By combining advancements in adaptive optics and machine learning, the AI4AO project aims to push the current limits of high angular resolution imaging, with direct applications in astronomy, optical communications, and space surveillance. AI4AO aspires to transform AO systems, making them more performant, robust, and autonomous. Developed over 36 months, AI4AO positions itself as a structuring project for future generations of high angular resolution instruments. The advancements made will directly benefit projects like the ELT and PROVIDENCE, offering major innovation prospects for astronomy, optical telecommunications, and space observation. The project also paves the way for future technological maturation, aiming for large-scale operational deployment. The consortium, composed of the Laboratoire d'Astrophysique de Marseille, ONERA, and the University of Durham, brings together complementary expertise in photonics, AI, and the integration of real-time embedded solutions.