Liu Xuan, Zaki Farzana R, Wu Haokun, Wang Chizhong, Wang Yahui
Department of Electrical and Computer Engineering, New Jersey Institute of Technology, Newark, NJ 07102, USA.
Biomed Opt Express. 2018 Jun 26;9(7):3335-3353. doi: 10.1364/BOE.9.003335. eCollection 2018 Jul 1.
Optical coherence elastography (OCE), a functional extension of optical coherence tomography (OCT), can be used to characterize the mechanical properties of biological tissue. A handheld fiber-optic OCE instrument will allow the clinician to conveniently interrogate the localized mechanical properties of tissue, leading to better informed clinical decision making. During handheld OCE characterization, the handheld probe is used to compress the sample and the displacement of the sample is quantified by analyzing the OCT signals acquired. However, the motion within the sample inevitably varies in time due to varying hand motion. Moreover, the motion speed depends on spatial location due to the sample deformation. Hence, there is a need for a robust motion tracking method for manual OCE measurement. In this study, we investigate a temporally and spatially adaptive Doppler analysis method. The method described here strategically chooses the time interval () between signals involved in Doppler analysis to track the motion speed (,) that varies temporally and spatially in a deformed sample volume under manual compression. Enabled by temporally and spatially adaptive Doppler analysis, we report the first demonstration of real-time manual OCE characterization of tissue to the best of our knowledge.
光学相干弹性成像(OCE)是光学相干断层扫描(OCT)的功能扩展,可用于表征生物组织的力学特性。手持式光纤OCE仪器将使临床医生能够方便地检测组织的局部力学特性,从而做出更明智的临床决策。在手持式OCE表征过程中,手持式探头用于压缩样品,通过分析采集到的OCT信号来量化样品的位移。然而,由于手部运动的变化,样品内部的运动不可避免地随时间变化。此外,由于样品变形,运动速度取决于空间位置。因此,需要一种用于手动OCE测量的稳健运动跟踪方法。在本研究中,我们研究了一种时间和空间自适应多普勒分析方法。这里描述的方法策略性地选择多普勒分析中涉及的信号之间的时间间隔(),以跟踪在手动压缩下变形样品体积中随时间和空间变化的运动速度(,)。据我们所知,通过时间和空间自适应多普勒分析,我们首次展示了对组织进行实时手动OCE表征。