Exoplanet Imaging via Differentiable Rendering

IF 4.2 2区 计算机科学 Q2 ENGINEERING, ELECTRICAL & ELECTRONIC IEEE Transactions on Computational Imaging Pub Date : 2025-01-03 DOI:10.1109/TCI.2025.3525971
Brandon Y. Feng;Rodrigo Ferrer-Chávez;Aviad Levis;Jason J. Wang;Katherine L. Bouman;William T. Freeman
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Abstract

Direct imaging of exoplanets is crucial for advancing our understanding of planetary systems beyond our solar system, but it faces significant challenges due to the high contrast between host stars and their planets. Wavefront aberrations introduce speckles in the telescope science images, which are patterns of diffracted starlight that can mimic the appearance of planets, complicating the detection of faint exoplanet signals. Traditional post-processing methods, operating primarily in the image intensity domain, do not integrate wavefront sensing data. These data, measured mainly for adaptive optics corrections, have been overlooked as a potential resource for post-processing, partly due to the challenge of the evolving nature of wavefront aberrations. In this paper, we present a differentiable rendering approach that leverages these wavefront sensing data to improve exoplanet detection. Our differentiable renderer models wave-based light propagation through a coronagraphic telescope system, allowing gradient-based optimization to significantly improve starlight subtraction and increase sensitivity to faint exoplanets. Simulation experiments based on the James Webb Space Telescope configuration demonstrate the effectiveness of our approach, achieving substantial improvements in contrast and planet detection limits. Our results showcase how the computational advancements enabled by differentiable rendering can revitalize previously underexploited wavefront data, opening new avenues for enhancing exoplanet imaging and characterization.
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通过可微分渲染的系外行星成像
系外行星的直接成像对于提高我们对太阳系以外行星系统的理解至关重要,但由于宿主恒星与其行星之间的高对比度,它面临着重大挑战。波前像差在望远镜的科学图像中引入了斑点,这些斑点是衍射星光的图案,可以模仿行星的外观,使微弱的系外行星信号的探测变得复杂。传统的后处理方法主要在图像强度域操作,不能整合波前传感数据。这些主要用于自适应光学校正的数据被忽视为后处理的潜在资源,部分原因是由于波前像差不断变化的性质所带来的挑战。在本文中,我们提出了一种利用这些波前传感数据来改进系外行星探测的可微分渲染方法。我们的可微分渲染器通过日冕望远镜系统模拟基于波的光传播,允许基于梯度的优化显著改善星光减法并提高对微弱系外行星的灵敏度。基于詹姆斯韦伯太空望远镜配置的模拟实验证明了我们方法的有效性,在对比度和行星探测限制方面取得了实质性的改进。我们的研究结果展示了可微分渲染所带来的计算进步如何能够振兴以前未充分利用的波前数据,为增强系外行星成像和表征开辟了新的途径。
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来源期刊
IEEE Transactions on Computational Imaging
IEEE Transactions on Computational Imaging Mathematics-Computational Mathematics
CiteScore
8.20
自引率
7.40%
发文量
59
期刊介绍: The IEEE Transactions on Computational Imaging will publish articles where computation plays an integral role in the image formation process. Papers will cover all areas of computational imaging ranging from fundamental theoretical methods to the latest innovative computational imaging system designs. Topics of interest will include advanced algorithms and mathematical techniques, model-based data inversion, methods for image and signal recovery from sparse and incomplete data, techniques for non-traditional sensing of image data, methods for dynamic information acquisition and extraction from imaging sensors, software and hardware for efficient computation in imaging systems, and highly novel imaging system design.
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Denoising Knowledge Transfer Model for Zero-Shot MRI Reconstruction IEEE Signal Processing Society Information CSA-FCN: Channel- and Spatial-Gated Attention Mechanism Based Fully Complex-Valued Neural Network for System Matrix Calibration in Magnetic Particle Imaging Exoplanet Imaging via Differentiable Rendering List of Reviewers
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