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Exoplanet Detection via Differentiable Rendering

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arxiv 2501.01912 v1 pith:CZLQKKLW submitted 2025-01-03 astro-ph.EP astro-ph.IMcs.CVeess.IV

Exoplanet Detection via Differentiable Rendering

classification astro-ph.EP astro-ph.IMcs.CVeess.IV
keywords wavefrontdatadetectiondifferentiableexoplanetrenderingtelescopeaberrations
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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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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Cited by 2 Pith papers

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  1. Point spread function wavefront recovery from in-focus stellar observations

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    WaveDiff with wavefront feature projection recovers WFE from noisy undersampled in-focus observations at ~3% error, a tenfold improvement over the prior version.

  2. Image reconstruction with the JWST Interferometer

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    Dorito enables diffraction-limited image reconstruction from JWST AMI observations by deconvolving images or Fourier observables using maximum entropy and total variation regularization.