JOURNAL ARTICLE

Coded Aperture Design for Super-Resolution Phase Retrieval

Abstract

Phase retrieval is an inverse problem which consists on estimating a complex signal from intensity-only measurements. Recent works have studied the problem of retrieving the phase of a high-resolution image from low-resolution phaseless measurements, under a setup that records coded diffraction patterns. However, the attainable resolution of the image depends on the sensor characteristics, whose cost increases in proportion to the resolution. Also, this methodology lacks theoretical analysis. Hence, this work derives a super-resolution model from low-resolution coded phaseless measurements, that in contrast with prior contributions, the attainable resolution of the image directly depends on the resolution of the coded aperture. For this model we establish that an image can be recovered (up to a global unimodular constant) with high probability. Also, the theoretical result states that the image reconstruction quality directly depends on the design of the coded aperture. Therefore, a strategy that designs the spatial distribution of the coded aperture is developed. Simulation results show that reconstruction quality using designed coded aperture is higher than the non-designed ensembles.

Keywords:
Coded aperture Unimodular matrix Phase retrieval Computer science Aperture (computer memory) Image resolution Resolution (logic) Iterative reconstruction Image quality Phase (matter) Algorithm Diffraction Computer vision Artificial intelligence Optics Image (mathematics) Mathematics Detector Physics Fourier transform Telecommunications Acoustics

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2
Cited By
0.00
FWCI (Field Weighted Citation Impact)
23
Refs
0.20
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Citation History

Topics

Advanced X-ray Imaging Techniques
Physical Sciences →  Physics and Astronomy →  Radiation
Optical measurement and interference techniques
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Digital Holography and Microscopy
Physical Sciences →  Physics and Astronomy →  Atomic and Molecular Physics, and Optics

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