ESCAPE project. CAPyBARA: a Roman Coronagraph simulator for post-processing methods development

Lisa Altinier, Élodie Choquet, Arthur Vigan, Nicolás Godoy, Alexis Lau
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Abstract

The Roman Coronagraph Instrument will be the first space facility equipped with deformable mirrors (DMs). These will lead to reach a contrast of $10^{-8}$ or better in a dark hole between $3-9 \lambda/D$. Post-processing techniques play an important role in increasing the contrast limits. Our work investigates how DMs can be used to calibrate the instrument response to controlled wavefront error maps and to improve the post-processing performance. To this goal, we are developing a simulation pipeline, CAPyBARA, that includes both a propagation model of the Coronagraph and a post-processing module and produces starlight subtracted images of a science target. This pipeline will allow us to investigate alternative observing strategies and test their performance for the Roman Coronagraph. Here we present the first version of the simulator: it currently reproduces the optical propagation, which consists in the hybrid Lyot coronagraph optical structure and dark-hole digging technique (Electric Field Conjugation coupled with $\beta$-bumping), the environment (quasi-static aberration) and the post-processing. With it, we mimic a Coronagraph Instrument observing sequence, which consists in first acquiring reference star data before slewing to the scientific target, and we investigate how the evolution of quasi-static aberrations deteriorate the contrast limit in the dark hole. We simulate a science target with planets at high contrast with their star and we perform a first post-processing analysis with classical subtraction techniques. Here we present the CAPyBARA simulator, as well as some first results. The next step will be to generate PSF libraries by injecting pre-calibrated probes on the DMs (in open loop) during the reference star acquisition and compute a PCA model. Later, we will compare the performance gain obtained with the modulated-DM reference library over standard approaches (RDI).
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ESCAPE项目。CAPyBARA:用于后处理方法开发的罗马日冕仪模拟器
Roman Coronagraph 仪器将是第一个配备可变形反射镜(DM)的空间设施。这将使暗洞的对比度达到10^{-8}美元或更高,介于3-9 \lambda/D$之间。后处理技术在提高对比度极限方面发挥着重要作用。我们的工作是研究如何利用DM来校准仪器对受控波前误差图的响应,并提高后处理性能。为了实现这一目标,我们正在开发一个模拟管道--CAPyBARA,其中包括一个日冕仪的传播模型和一个后处理模块,并生成科学目标的星光减去图像。通过该模拟程序,我们可以研究其他观测策略,并测试它们在罗曼摄谱仪上的性能。在这里,我们介绍模拟器的第一个版本:它目前再现了光学传播,包括混合式Lyot Coronagraph光学结构和暗洞挖掘技术(电场轭合与$\beta$-bumping耦合)、环境(准静态畸变)和后处理。有了它,我们就可以模拟 Coronagraph Instrumentobserving 序列,其中包括在回转到科学目标之前首先获取参考星数据,我们还研究了准静态像差的演变如何恶化暗洞中的对比度极限。我们模拟了一个科学目标,其中的行星与恒星对比度很高,我们用经典的减法技术进行了第一次后处理分析。下一步将是在参考星采集过程中,通过在 DM 上注入预校准探针(开环)来生成 PSF 库,并计算 PCA 模型。随后,我们将比较使用经调制的 DM 参考库与标准方法(RDI)相比所获得的性能增益。
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