Single-Shot 3D Incoherent Imaging Using Deterministic and Random Optical Fields with Lucy–Richardson–Rosen Algorithm

Author:

Ignatius Xavier Agnes Pristy12,Arockiaraj Francis Gracy12,Gopinath Shivasubramanian1ORCID,John Francis Rajeswary Aravind Simon1ORCID,Reddy Andra Naresh Kumar3ORCID,Ganeev Rashid A.345,Singh M. Scott Arockia67,Tania S. D. Milling89,Anand Vijayakumar110ORCID

Affiliation:

1. Institute of Physics, University of Tartu, W. Ostwaldi 1, 50411 Tartu, Estonia

2. School of Electrical and Computer Engineering, Ben Gurion University of the Negev, Beer-Sheva 8410501, Israel

3. Laboratory of Nonlinear Optics, University of Latvia, 1004 Riga, Latvia

4. Tashkent Institute of Irrigation and Agricultural Mechanization Engineers, National Research University, Tashkent 100000, Uzbekistan

5. Department of Physics and Astronomy, Chirchik State Pedagogical University, Chirchik 111700, Uzbekistan

6. Dr. Jeyasekharan Hospital, Nagercoil 629003, Tamil Nadu, India

7. Dr. Scott’s Laser and Piles Fistula Center, Nagercoil 629201, Tamil Nadu, India

8. Department of Orthodontics, Rajas Dental College and Hospital, Tirunelveli 627105, Tamil Nadu, India

9. Darshan Dental and Orthodontic Clinic, Kanyakumari 629401, Tamil Nadu, India

10. Optical Sciences Center and ARC Training Centre in Surface Engineering for Advanced Materials (SEAM), School of Science, Computing and Engineering Technologies, Swinburne University of Technology, Hawthorn, Melbourne, VIC 3122, Australia

Abstract

Coded aperture 3D imaging techniques have been rapidly evolving in recent years. The two main directions of evolution are in aperture engineering to generate the optimal optical field and in the development of a computational reconstruction method to reconstruct the object’s image from the intensity distribution with minimal noise. The goal is to find the ideal aperture–reconstruction method pair, and if not that, to optimize one to match the other for designing an imaging system with the required 3D imaging characteristics. The Lucy–Richardson–Rosen algorithm (LR2A), a recently developed computational reconstruction method, was found to perform better than its predecessors, such as matched filter, inverse filter, phase-only filter, Lucy–Richardson algorithm, and non-linear reconstruction (NLR), for certain apertures when the point spread function (PSF) is a real and symmetric function. For other cases of PSF, NLR performed better than the rest of the methods. In this tutorial, LR2A has been presented as a generalized approach for any optical field when the PSF is known along with MATLAB codes for reconstruction. The common problems and pitfalls in using LR2A have been discussed. Simulation and experimental studies for common optical fields such as spherical, Bessel, vortex beams, and exotic optical fields such as Airy, scattered, and self-rotating beams have been presented. From this study, it can be seen that it is possible to transfer the 3D imaging characteristics from non-imaging-type exotic fields to indirect imaging systems faithfully using LR2A. The application of LR2A to medical images such as colonoscopy images and cone beam computed tomography images with synthetic PSF has been demonstrated. We believe that the tutorial will provide a deeper understanding of computational reconstruction using LR2A.

Funder

European Union’s Horizon 2020 research and innovation programme

European Regional Development Fund

Publisher

MDPI AG

Subject

Radiology, Nuclear Medicine and imaging,Instrumentation,Atomic and Molecular Physics, and Optics

Reference51 articles.

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4. Liu, J.P., Tahara, T., Hayasaki, Y., and Poon, T.C. (2018). Incoherent digital holography: A review. Appl. Sci., 8.

5. Rosen, J., Vijayakumar, A., and Hai, N. (2023). SPIE Spotlight E Book Series, Bellingham.

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