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在存在手术室光线伪影的情况下,神经网络利用拉曼光谱改善脑癌检测。

Neural networks improve brain cancer detection with Raman spectroscopy in the presence of operating room light artifacts.

作者信息

Jermyn Michael, Desroches Joannie, Mercier Jeanne, Tremblay Marie-Andrée, St-Arnaud Karl, Guiot Marie-Christine, Petrecca Kevin, Leblond Frederic

机构信息

McGill University, Montreal Neurological Institute and Hospital, Department of Neurology and Neurosurgery, 3801 University Street, Montreal, Quebec H3A 2B4, CanadabPolytechnique Montreal, Department of Engineering Physics, CP 6079, Succ. Centre-Ville, Montreal, Quebec H3C 3A7, Canada.

Polytechnique Montreal, Department of Engineering Physics, CP 6079, Succ. Centre-Ville, Montreal, Quebec H3C 3A7, Canada.

出版信息

J Biomed Opt. 2016 Sep 1;21(9):94002. doi: 10.1117/1.JBO.21.9.094002.

Abstract

Invasive brain cancer cells cannot be visualized during surgery and so they are often not removed. These residual cancer cells give rise to recurrences. <italic<In vivo</italic< Raman spectroscopy can detect these invasive cancer cells in patients with grade 2 to 4 gliomas. The robustness of this Raman signal can be dampened by spectral artifacts generated by lights in the operating room. We found that artificial neural networks (ANNs) can overcome these spectral artifacts using nonparametric and adaptive models to detect complex nonlinear spectral characteristics. Coupling ANN with Raman spectroscopy simplifies the intraoperative use of Raman spectroscopy by limiting changes required to the standard neurosurgical workflow. The ability to detect invasive brain cancer under these conditions may reduce residual cancer remaining after surgery and improve patient survival.

摘要

侵袭性脑癌细胞在手术过程中无法可视化,因此常常无法被切除。这些残留癌细胞会导致复发。体内拉曼光谱可以检测2至4级神经胶质瘤患者体内的这些侵袭性癌细胞。手术室灯光产生的光谱伪像会削弱这种拉曼信号的稳健性。我们发现,人工神经网络(ANN)可以使用非参数和自适应模型来克服这些光谱伪像,以检测复杂的非线性光谱特征。将人工神经网络与拉曼光谱相结合,通过限制标准神经外科手术流程所需的变化,简化了拉曼光谱在术中的使用。在这些条件下检测侵袭性脑癌的能力可能会减少术后残留的癌症,并提高患者生存率。

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