Wang Ruikang K
Department of Biomedical Engineering, Oregon Health & Science University, Portland, OR 97239, USA.
Phys Med Biol. 2007 Oct 7;52(19):5897-907. doi: 10.1088/0031-9155/52/19/011. Epub 2007 Sep 14.
The author describes a Fourier domain optical coherence tomography (FDOCT) system that is capable of full range complex imaging in vivo. This is achieved by introducing a constant carrier frequency into the OCT spectral interferograms at the time when imaging is performed. The complex functions of the spatial interferograms formed by each single wavelength are constructed before performing the Fourier transformation to localize the scatters within a sample. Two algorithms, based on Fourier filtering and Hilbert transformation, respectively, are described to achieve the full range complex FDOCT imaging. It is shown that the Hilbert transformation approach delivers better performance than the Fourier filtering method does in terms of tolerating the sample movement in vivo. The author finally demonstrates experimentally the system and algorithms for true in vivo imaging at a rate of 20,000 axial scans per second.
作者描述了一种能够在体内进行全范围复数成像的傅里叶域光学相干断层扫描(FDOCT)系统。这是通过在成像时将恒定载波频率引入OCT光谱干涉图来实现的。在执行傅里叶变换以定位样品内的散射体之前,构建由每个单波长形成的空间干涉图的复数函数。分别描述了基于傅里叶滤波和希尔伯特变换的两种算法,以实现全范围复数FDOCT成像。结果表明,在容忍体内样品移动方面,希尔伯特变换方法比傅里叶滤波方法具有更好的性能。作者最终通过实验展示了该系统和算法,能够以每秒20,000次轴向扫描的速度进行真正的体内成像。