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双窗口双带宽光谱光相干断层成像度量法用于组织中散射体大小的定性区分。

Dual-window dual-bandwidth spectroscopic optical coherence tomography metric for qualitative scatterer size differentiation in tissues.

机构信息

School of Electrical and Electronic Engineering, Nanyang Technological University, 639798 Singapore.

出版信息

IEEE Trans Biomed Eng. 2012 Sep;59(9):2439-48. doi: 10.1109/TBME.2012.2202391. Epub 2012 Jun 4.

Abstract

This study investigates the autocorrelation bandwidths of dual-window (DW) optical coherence tomography (OCT) k-space scattering profile of different-sized microspheres and their correlation to scatterer size. A dual-bandwidth spectroscopic metric defined as the ratio of the 10% to 90% autocorrelation bandwidths is found to change monotonically with microsphere size and gives the best contrast enhancement for scatterer size differentiation in the resulting spectroscopic image. A simulation model supports the experimental results and revealed a tradeoff between the smallest detectable scatterer size and the maximum scatterer size in the linear range of the dual-window dual-bandwidth (DWDB) metric, which depends on the choice of the light source optical bandwidth. Spectroscopic OCT (SOCT) images of microspheres and tonsil tissue samples based on the proposed DWDB metric showed clear differentiation between different-sized scatterers as compared to those derived from conventional short-time Fourier transform metrics. The DWDB metric significantly improves the contrast in SOCT imaging and can aid the visualization and identification of dissimilar scatterer size in a sample. Potential applications include the early detection of cell nuclear changes in tissue carcinogenesis, the monitoring of healing tendons, and cell proliferation in tissue scaffolds.

摘要

本研究探讨了不同大小微球的双窗口(DW)光相干层析术(OCT)k 空间散射分布的自相关带宽及其与散射体大小的关系。发现定义为 10%至 90%自相关带宽之比的双带宽光谱度量在微球尺寸上单调变化,并在所得光谱图像中提供了对散射体尺寸差异的最佳对比度增强。模拟模型支持实验结果,并揭示了双窗口双带宽(DWDB)度量的线性范围内最小可检测散射体尺寸和最大散射体尺寸之间的权衡,这取决于光源光带宽的选择。基于所提出的 DWDB 度量的微球和扁桃体组织样本的光谱 OCT(SOCT)图像显示,与基于传统短时间傅里叶变换度量的图像相比,不同大小的散射体之间有明显的区分。DWDB 度量可显著提高 SOCT 成像的对比度,并有助于可视化和识别样品中不同大小的散射体。潜在应用包括组织癌变中细胞核变化的早期检测、愈合肌腱的监测以及组织支架中的细胞增殖。

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