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Vision transformer for multi-domain phase retrieval in coherent diffraction imaging
Optics Express
|August 14, 2026
Summary
A new Fourier Vision Transformer (ViT) method effectively solves challenging Bragg coherent diffraction imaging (BCDI) phase retrieval problems in strongly distorted crystals. This approach improves accuracy and stability for multi-domain materials.
Area of Science:
- Materials Science
- Crystallography
- Computational Imaging
Background:
- Bragg coherent diffraction imaging (BCDI) phase retrieval is challenging for crystals with significant distortions (strong-phase regime).
- The phase domain problem, involving block displacements and sharp domain walls, leads to split Bragg peaks and complex fringe patterns.
- Classical iterative solvers often struggle with convergence and solution stability in these complex scenarios.
Purpose of the Study:
- To develop a novel, unsupervised method for solving the multi-domain phase retrieval problem in the strong-phase regime of BCDI.
- To address limitations of traditional solvers in handling complex crystal structures and distortions.
Main Methods:
- Introduction of an unsupervised Vision Transformer (ViT) model incorporating Fourier attention.
- Utilizing token mixing and multiscale Fourier attention to couple global reciprocal-space information.
- Directly solving phase retrieval from measured 2D Bragg diffraction intensities.
Main Results:
- Validated on synthetic Voronoi multi-domain crystals with strong-phase contrast and noise.
- Tested on experimental data from SrTiO3, Fe3O4 (during phase transition), and La0.5Ca0.5MnO3 nanocrystals.
- Achieved reciprocal-space mismatch (χ²) comparable to or better than baseline methods.
- Demonstrated preservation of domain-resolved phase reconstructions with increasing domain numbers on synthetic data.
Conclusions:
- The Fourier ViT method offers a robust solution for strong-phase BCDI phase retrieval, particularly for multi-domain materials.
- The approach shows competitive performance against iterative methods and CNNs, especially under challenging conditions.
- This AI-driven technique advances the capability to image complex crystalline structures with high fidelity.
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