Author:
Yamato Naoki,Niioka Hirohiko,Miyake Jun,Hashimoto Mamoru
Abstract
AbstractA coherent anti-Stokes Raman scattering (CARS) rigid endoscope was developed to visualize peripheral nerves without labeling for nerve-sparing endoscopic surgery. The developed CARS endoscope had a problem with low imaging speed, i.e. low imaging rate. In this study, we demonstrate that noise reduction with deep learning boosts the nerve imaging speed with CARS endoscopy. We employ fine-tuning and ensemble learning and compare deep learning models with three different architectures. In the fine-tuning strategy, deep learning models are pre-trained with CARS microscopy nerve images and retrained with CARS endoscopy nerve images to compensate for the small dataset of CARS endoscopy images. We propose using the equivalent imaging rate (EIR) as a new evaluation metric for quantitatively and directly assessing the imaging rate improvement by deep learning models. The highest EIR of the deep learning model was 7.0 images/min, which was 5 times higher than that of the raw endoscopic image of 1.4 images/min. We believe that the improvement of the nerve imaging speed will open up the possibility of reducing postoperative dysfunction by intraoperative nerve identification.
Publisher
Springer Science and Business Media LLC
Reference46 articles.
1. Barnoiu, O.-S. et al. Prospective urodynamic model for prediction of urinary incontinence after robot-assisted radical prostatectomy. Urol. Int. 92, 306–309 (2014).
2. Nelson, C. P., Montie, J. E., McGUIRE, E. J., Wedemeyer, G. & Wei, J. T. Intraoperative nerve stimulation with measurement of urethral sphincter pressure changes during radical retropubic prostatectomy: A feasibility study. J. Urol. 169, 2225–2228 (2003).
3. Song, W. H. et al. Establishment of novel intraoperative monitoring and mapping method for the cavernous nerve during robot-assisted radical prostatectomy: Results of the phase I/II, first-in-human, feasibility study. Eur. Urol. (2019).
4. Gibbs-Strauss, S. L. et al. Nerve-highlighting fluorescent contrast agents for image-guided surgery. Mol. Imaging 10, 91–101 (2011).
5. Cotero, V. E. et al. Intraoperative fluorescence imaging of peripheral and central nerves through a myelin-selective contrast agent. Mol. Imaging Biol. 14, 708–717 (2012).
Cited by
18 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献