arXiv:2503.16690astro-ph.IMastro-ph.EP2025-03中稿 · publication in A&A被引 7

用深度学习让无调制金字塔波前传感器首次实现天文自适应光学闭环控制。

Making the unmodulated pyramid wavefront sensor smart II. First on-sky demonstration of extreme adaptive optics with deep learning

  • 用卷积神经网络构建非线性重建器,实现无调制金字塔波前传感器
  • 在真实天文观测中达成2000赫兹以上控制频率,稳定校正亮星与暗星
  • 在强风下对暗星表现更优,适合下一代极端自适应光学系统

金字塔波前传感器(PWFS)是当前及未来极端自适应光学(XAO)系统的首选。几乎所有仪器都采用调制形式以缓解其线性范围有限的问题,但调制会降低灵敏度、无法探测花瓣-相位模式,并限制高速运行能力。因此,人们强烈希望使用无调制的PWFS,这可通过非线性重建器实现。本文首次在真实天文观测中展示了基于卷积神经网络的非线性重建器驱动的无调制PWFS闭环控制。该方法在Magellan自适应光学极致(MagAO-X)仪器上通过优化的TensorRT框架实现实时推理,控制回路频率超过2千赫兹。观测结果表明,仅用内部光源校准的模型即可实现稳定可靠的校正。性能分析显示,在有利条件下,其斯特雷尔比接近高度优化的调制式PWFS;尤其在强风影响下,对较暗恒星的性能提升显著。这些结果证实了无调制PWFS的可行性,并凸显其在下一代仪器中的潜力。未来将致力于实现更高频率(>3千赫兹)、优化校准流程,并在更暗恒星上验证其优势。

原文摘要 · Abstract (English)

Pyramid wavefront sensors (PWFSs) are the preferred choice for current and future extreme adaptive optics (XAO) systems. Almost all instruments use the PWFS in its modulated form to mitigate its limited linearity range. However, this modulation comes at the cost of a reduction in sensitivity, a blindness to petal-piston modes, and a limit to the sensor's ability to operate at high speeds. Therefore, there is strong interest to use the PWFS without modulation, which can be enabled with nonlinear reconstructors. Here, we present the first on-sky demonstration of XAO with an unmodulated PWFS using a nonlinear reconstructor based on convolutional neural networks. We discuss the real-time implementation on the Magellan Adaptive Optics eXtreme (MagAO-X) instrument using the optimized TensorRT framework and show that inference is fast enough to run the control loop at >2 kHz frequencies. Our on-sky results demonstrate a successful closed-loop operation using a model calibrated with internal source data that delivers stable and robust correction under varying conditions. Performance analysis reveals that our smart PWFS achieves nearly the same Strehl ratio as the highly optimized modulated PWFS under favorable conditions on bright stars. Notably, we observe an improvement in performance on a fainter star under the influence of strong winds. These findings confirm the feasibility of using the PWFS in its unmodulated form and highlight its potential for next-generation instruments. Future efforts will focus on achieving even higher control loop frequencies (>3 kHz), optimizing the calibration procedures, and testing its performance on fainter stars, where more gain is expected for the unmodulated PWFS compared to its modulated counterpart.

自适应光学深度学习波前传感天文观测

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