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Comparative laboratory study of electric field conjugation algorithms

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arxiv 2309.04920 v2 pith:USXUCNQQ submitted 2023-09-10 astro-ph.IM

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keywords fieldconjugationcoronagraphelectricalgorithmscontrollaboratorymethods
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Future space telescope coronagraph instruments hinge on the integration of high-performance masks and precise wavefront sensing and control techniques to create dark holes essential for exoplanet detection. Recent advancements in wavefront control algorithms might exhibit differing performance depending on the coronagraph used. This research investigates three model-free and model-based algorithms in conjunction with either a vector vortex coronagraph or a scalar vortex coronagraph under identical laboratory conditions: pairwise probing with electric field conjugation, the self-coherent camera with electric field conjugation, and implicit electric field conjugation. We present experimental results in narrowband and broadband light from the In-Air Coronagraph Testbed at the Jet Propulsion Laboratory. We find that model-free dark hole digging methods achieve comparable broadband contrasts to model-based methods, and highlight the calibration costs of model-free methods compared to model-based approaches. This study also reports the first time that electric field conjugation with the self-coherent camera has been applied for simultaneous multi-subband correction with a field stop. This study compares the advantages and disadvantages of each of these wavefront sensing and control algorithms with respect to their potential for future space telescopes.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Single-shot focal plane wavefront sensing with the spatially-clipped self-coherent camera

    astro-ph.IM 2025-09 conditional novelty 6.0 of 10

    The Spatially-Clipped Self-Coherent Camera (SCSCC) senses wavefronts in a single shot and, in simulations, digs a 5-20 lambda/D dark hole to ~4e-10 intensity, about 50x deeper than pairwise probing for fast-evolving speckles.

  2. Freezing the speckles: focal plane wavefront sensing with the spatially-clipped self-coherent camera

    astro-ph.IM 2026-08 conditional novelty 5.0 of 10

    A spatially-clipped self-coherent camera variant senses wavefront errors from one image and, combined with implicit electric field conjugation, reduces speckle intensity about twofold in part of a lab dark hole.

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