Phase retrieval by designed Hadamard complementary coded apertures

Bastián Romero, Pablo Scherz, Nelson Díaz, Jorge Tapia, Aarón Cofré, Eduardo Peters, Esteban Vera, Darío G. Pérez*

*Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

Phase retrieval is a challenging inverse problem where amplitude and phase are estimated from diffracted intensities, with applications ranging from microscopy to astronomy. Current computational imaging techniques employ random complementary coded apertures to recover complex optical fields, but require at least 20 masks for effective reconstruction, limiting real-time applications. We propose a novel approach using eight binary Hadamard complementary coded apertures designed to minimize the condition number, thereby ensuring a well-conditioned inverse problem. Our method significantly reduces acquisition time while enhancing reconstruction quality. Using the Fresnel propagation regime and the hybrid input-output algorithm, we validate our approach through extensive simulations with 23 Kodak dataset images across various noise levels. Results demonstrate that our Hadamard approach outperforms conventional random coded methods in reducing the required number of masks. Furthermore, experimental results confirm our technique successfully recovers both simple phase objects like lenses and complex arbitrary phases displayed on spatial light modulators, achieving superior visual quality measured by naturalness image quality evaluation metrics compared to conventional patterns.

Original languageEnglish
Article number113311
JournalOptics and Laser Technology
Volume191
DOIs
StatePublished - Dec 2025

Bibliographical note

Publisher Copyright:
© 2025 Elsevier Ltd

Keywords

  • Coded illumination
  • Complementary Hadamard-coded aperture
  • Condition number
  • Fienup hybrid input-output (HIO) algorithm
  • Phase retrieval

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