Extreme Adaptive Optics (AO) systems are designed to provide high resolution and high contrast observing capabilities on the largest ground-based telescopes through exquisite phase reconstruction accuracy. In that context, the pyramid wavefront sensor (P-WFS) has shown promise to deliver the means to provide such accuracy due to its high sensitivity. However, traditional methods cannot leverage the highly non-linear P-WFS measurements to their full potential. We present a predictive control method based on Reinforcement Learning (RL) for AO control with a P-WFS. The proposed approach is data-driven, has no assumptions about the system's evolution, and is non-linear due to the usage of neural networks. First, we discuss the challenges of usi...
Context. The direct imaging of potentially habitable exoplanets is one prime science case for the ne...
International audienceThe Pyramid wave-front sensor (WFS) is currently the baseline for several futu...
Context. Extremely large telescopes are overwhelmingly equipped with pyramid wavefront sensors (PyWF...
Context. The direct imaging of potentially habitable exoplanets is one prime science case for the ne...
When planar wavefronts from distant stars traverse the atmosphere, they become distorted due to the...
Adaptive optics (AO) has become an indispensable tool for ground-based telescopes to mitigate atmosp...
Current and future high-contrast imaging instruments require extreme adaptive optics systems to reac...
Reinforcement learning (RL) presents a new approach for controlling adaptive optics (AO) systems for...
International audienceWe present a novel formulation of closed-loop adaptive optics (AO) control as ...
International audienceAdvanced adaptive-optics (AO) systems will likely utilize pyramid wavefront se...
The search for exoplanets is pushing adaptive optics (AO) systems on ground-based telescopes to thei...
International audienceAims. With its high sensitivity, the pyramid wavefront sensor (PyWFS) is becom...
Context. The direct imaging of potentially habitable exoplanets is one prime science case for the ne...
International audienceThe Pyramid wave-front sensor (WFS) is currently the baseline for several futu...
Context. Extremely large telescopes are overwhelmingly equipped with pyramid wavefront sensors (PyWF...
Context. The direct imaging of potentially habitable exoplanets is one prime science case for the ne...
When planar wavefronts from distant stars traverse the atmosphere, they become distorted due to the...
Adaptive optics (AO) has become an indispensable tool for ground-based telescopes to mitigate atmosp...
Current and future high-contrast imaging instruments require extreme adaptive optics systems to reac...
Reinforcement learning (RL) presents a new approach for controlling adaptive optics (AO) systems for...
International audienceWe present a novel formulation of closed-loop adaptive optics (AO) control as ...
International audienceAdvanced adaptive-optics (AO) systems will likely utilize pyramid wavefront se...
The search for exoplanets is pushing adaptive optics (AO) systems on ground-based telescopes to thei...
International audienceAims. With its high sensitivity, the pyramid wavefront sensor (PyWFS) is becom...
Context. The direct imaging of potentially habitable exoplanets is one prime science case for the ne...
International audienceThe Pyramid wave-front sensor (WFS) is currently the baseline for several futu...
Context. Extremely large telescopes are overwhelmingly equipped with pyramid wavefront sensors (PyWF...