Open Access
24 July 2023 Recent advances in deep-learning-enhanced photoacoustic imaging
Jinge Yang, Seongwook Choi, Jiwoong Kim, Byullee Park, Chulhong Kim
Author Affiliations +
Abstract

Photoacoustic imaging (PAI), recognized as a promising biomedical imaging modality for preclinical and clinical studies, uniquely combines the advantages of optical and ultrasound imaging. Despite PAI’s great potential to provide valuable biological information, its wide application has been hindered by technical limitations, such as hardware restrictions or lack of the biometric information required for image reconstruction. We first analyze the limitations of PAI and categorize them by seven key challenges: limited detection, low-dosage light delivery, inaccurate quantification, limited numerical reconstruction, tissue heterogeneity, imperfect image segmentation/classification, and others. Then, because deep learning (DL) has increasingly demonstrated its ability to overcome the physical limitations of imaging modalities, we review DL studies from the past five years that address each of the seven challenges in PAI. Finally, we discuss the promise of future research directions in DL-enhanced PAI.

CC BY: © The Authors. Published by SPIE and CLP under a Creative Commons Attribution 4.0 International License. Distribution or reproduction of this work in whole or in part requires full attribution of the original publication, including its DOI.
Jinge Yang, Seongwook Choi, Jiwoong Kim, Byullee Park, and Chulhong Kim "Recent advances in deep-learning-enhanced photoacoustic imaging," Advanced Photonics Nexus 2(5), 054001 (24 July 2023). https://doi.org/10.1117/1.APN.2.5.054001
Received: 30 May 2023; Accepted: 5 July 2023; Published: 24 July 2023
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CITATIONS
Cited by 7 scholarly publications.
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KEYWORDS
Image segmentation

In vivo imaging

Image restoration

Monte Carlo methods

Education and training

Gallium nitride

Network architectures

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