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Robust and fast characterization of OCT-based optical attenuation using a novel frequency-domain algorithm for brain cancer detection

机译:使用新型频域算法检测脑癌的基于OCT的光衰减的鲁棒快速表征

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摘要

Cancer is known to alter the local optical properties of tissues. The detection of OCT-based optical attenuation provides a quantitative method to efficiently differentiate cancer from non-cancer tissues. In particular, the intraoperative use of quantitative OCT is able to provide a direct visual guidance in real time for accurate identification of cancer tissues, especially these without any obvious structural layers, such as brain cancer. However, current methods are suboptimal in providing high-speed and accurate OCT attenuation mapping for intraoperative brain cancer detection. In this paper, we report a novel frequency-domain (FD) algorithm to enable robust and fast characterization of optical attenuation as derived from OCT intensity images. The performance of this FD algorithm was compared with traditional fitting methods by analyzing datasets containing images from freshly resected human brain cancer and from a silica phantom acquired by a 1310 nm swept-source OCT (SS-OCT) system. With graphics processing unit (GPU)-based CUDA C/C++ implementation, this new attenuation mapping algorithm can offer robust and accurate quantitative interpretation of OCT images in real time during brain surgery.
机译:已知癌症会改变组织的局部光学特性。基于OCT的光衰减的检测提供了一种定量方法,可以有效地将癌症与非癌症组织区分开。特别是,术中使用定量OCT能够实时提供直接的视觉指导,以准确识别癌组织,尤其是没有明显结构层的癌组织,例如脑癌。但是,当前的方法在为术中脑癌检测提供高速,准确的OCT衰减图方面并不理想。在本文中,我们报告了一种新颖的频域(FD)算法,能够从OCT强度图像得出的光衰减具有鲁棒且快速的特征。通过分析包含新近切除的人脑癌和1310 nm扫描源OCT(SS-OCT)系统获得的硅胶体模图像的数据集,将该FD算法的性能与传统拟合方法进行了比较。通过基于图形处理器(GPU)的CUDA C / C ++实现,这种新的衰减映射算法可以在脑部手术中实时提供强大而准确的OCT图像定量解释。

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