Enhanced microvascular imaging through deep learning-driven OCTA reconstruction with squeeze-and-excitation block integration

被引:1
作者
Rashidi, Mohammad [1 ,2 ]
Kalenkov, Georgy [1 ,2 ]
Green, Daniel J. [3 ]
McLaughlin, Robert A. [1 ,2 ,4 ]
机构
[1] Univ Adelaide, Fac Hlth & Med Sci, Adelaide, SA 5005, Australia
[2] Univ Adelaide, Inst Photon & Adv Sensing, Adelaide, SA 5005, Australia
[3] Univ Western Australia, Sch Human Sci Exercise & Sport Sci, Crawley, WA 6009, Australia
[4] Univ Western Australia, Sch Phys, Crawley, WA 6009, Australia
基金
英国医学研究理事会; 澳大利亚研究理事会;
关键词
OPTICAL COHERENCE TOMOGRAPHY; HUMAN SKIN; SPECKLE; MORPHOLOGY; IMAGES; DEPTH; NM;
D O I
10.1364/BOE.525928
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Skin microvasculature is essential for cardiovascular health and thermoregulation in humans, yet its imaging and analysis pose significant challenges. Established methods, such as speckle decor relation applied to optical coherence tomography (OCT) B-scans for OCT-angiography (OCTA), often require a high number of B-scans, leading to long acquisition times that are prone to motion artifacts. In our study, we propose a novel approach integrating a deep learning algorithm within our OCTA processing. By integrating a convolutional neural network with a squeeze-and-excitation block, we address these challenges in microvascular imaging. Our method enhances accuracy and reduces measurement time by efficiently utilizing local information. The Squeeze-and-Excitation block further improves stability and accuracy by dynamically recalibrating features, highlighting the advantages of deep learning in this domain.
引用
收藏
页码:5592 / 5608
页数:17
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