Jaedicke Volker, Agcaer Semih, Robles Francisco E, Steinert Marian, Jones David, Goebel Sebastian, Gerhardt Nils C, Welp Hubert, Hofmann Martin R
Photonics and Terahertz Technology, Ruhr-University Bochum, Universitätsstr. 150, 44801 Bochum, Germany.
Department of Chemistry, Duke University, 2303 French Family Science Center, 124 Science Drive, Durham, NC 27708, USA.
Biomed Opt Express. 2013 Nov 22;4(12):2945-61. doi: 10.1364/BOE.4.002945. eCollection 2013.
Spectroscopic Optical Coherence Tomography (S-OCT) extracts depth resolved spectra that are inherently available from OCT signals. The back scattered spectra contain useful functional information regarding the sample, since the light is altered by wavelength dependent absorption and scattering caused by chromophores and structures of the sample. Two aspects dominate the performance of S-OCT: (1) the spectral analysis processing method used to obtain the spatially-resolved spectroscopic information and (2) the metrics used to visualize and interpret relevant sample features. In this work, we focus on the second aspect, where we will compare established and novel metrics for S-OCT. These concepts include the adaptation of methods known from multispectral imaging and modern signal processing approaches such as pattern recognition. To compare the performance of the metrics in a quantitative manner, we use phantoms with microsphere scatterers of different sizes that are below the system's resolution and therefore cannot be differentiated using intensity based OCT images. We show that the analysis of the spectral features can clearly separate areas with different scattering properties in multi-layer phantoms. Finally, we demonstrate the performance of our approach for contrast enhancement in bovine articular cartilage.
光谱光学相干断层扫描(S-OCT)可提取从OCT信号中固有可得的深度分辨光谱。背向散射光谱包含有关样本的有用功能信息,因为光会因样本中的发色团和结构引起的波长依赖性吸收和散射而发生改变。S-OCT的性能主要由两个方面决定:(1)用于获取空间分辨光谱信息的光谱分析处理方法,以及(2)用于可视化和解释相关样本特征的指标。在这项工作中,我们关注第二个方面,即比较S-OCT已有的和新颖的指标。这些概念包括对多光谱成像中已知方法的改编以及诸如模式识别等现代信号处理方法。为了以定量方式比较这些指标的性能,我们使用带有不同尺寸微球散射体的体模,这些散射体尺寸低于系统分辨率,因此无法使用基于强度的OCT图像进行区分。我们表明,光谱特征分析可以清晰地分离多层体模中具有不同散射特性的区域。最后,我们展示了我们的方法在增强牛关节软骨对比度方面的性能。