School of Electronic and Electrical Engineering, College of IT Engineering, Kyungpook National University, 80, Daehak-ro, Buk-gu, Daegu 41566, Korea.
Institute of Biomedical Engineering, School of Medicine, Kyungpook National University, 80, Daehak-ro, Buk-gu, Daegu 41566, Korea.
Sensors (Basel). 2021 Feb 11;21(4):1305. doi: 10.3390/s21041305.
Whole-directional scanning methodology is required to observe distinctive features of an entire physical structure with a three dimensional (3D) visualization. However, the implementation of whole-directional scanning is challenging for conventional optical coherence tomography (OCT), which scans a limited portion of the sample by utilizing unidirectional and bidirectional scanning methods. Therefore, in this paper an integrated quad-scanner (QS) strategy-based OCT method was implemented to obtain the whole-directional volumetry of a sample by employing four scanning arms installed around the sample. The simultaneous and sequential image acquisition capabilities are the conceptual key points of the proposed QS-OCT method, and were implemented using four precisely aligned scanning arms and applied in a complementary way according to the experimental criteria. To assess the feasibility of obtaining whole-directional morphological structures, a roll of Scotch tape, an ex vivo mouse heart, and kidney specimens were imaged and independently obtained tissue images at different directions were delicately merged to compose the 3D volume data set. The results revealed the potential merits of QS-OCT-based whole-directional imaging, which can be a favorable inspection method for various discoveries that require the dynamic coordinates of the whole physical structure.
全方向扫描方法是观察整个物理结构具有三维(3D)可视化的独特特征所必需的。然而,传统的光学相干断层扫描(OCT)的全方向扫描实施具有挑战性,因为它通过使用单向和双向扫描方法仅扫描样品的有限部分。因此,本文实施了一种基于集成四扫描器(QS)策略的 OCT 方法,通过在样品周围安装四个扫描臂来获得样品的全方向体积。同时和顺序图像采集能力是所提出的 QS-OCT 方法的概念要点,并使用四个精确对准的扫描臂来实现,并根据实验标准以互补的方式应用。为了评估获得全方向形态结构的可行性,对一卷 Scotch 胶带、一个离体小鼠心脏和肾脏标本进行了成像,并巧妙地合并了在不同方向获得的独立组织图像,以组成 3D 体积数据集。结果表明了基于 QS-OCT 的全方向成像的潜在优点,它可以成为需要整个物理结构动态坐标的各种发现的有利检查方法。