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Spectroscopic optical coherence tomography with graphics processing unit based analysis of three dimensional data sets

机译:基于图形处理单元的光谱光学相干层析成像技术对三维数据集的分析

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摘要

Spectroscopic optical coherence tomography (OCT) is an extension of the standard backscattering intensity analysis of OCT. It enables depth resolved monitoring of molecular and structural differences of tissue. One drawback of most methods to calculate the spectroscopic data is the long processing time. Also systematic and stochastic errors make the interpretation of the results challenging. Our approach combines modern signal processing tools with powerful graphics processing unit (GPU) programming. The processing speed for the spectroscopic analysis is nearly 3 mega voxel per second. This allows us to analyze multiple B-Scans in a few seconds and to display the results as a three dimensional data set. Our algorithm contains the following steps in addition to the conventional processing for frequency domain OCT: a quality map to exclude noisy parts of the data, spectral analysis by short time Fourier transform, feature reduction by Principal Component Analysis, unsupervised pattern recognition with K-means and rendering of the gray scale backscattering OCT data which is superimposed with a color map that is based on the results of the pattern recognition algorithm. Our set up provides a spectral range from 650-950nm and is optimized to suppress chromatic errors. In a proof-of-principle attempt, we already achieved additional spectroscopic contrast in phantom samples including scattering microspheres of different sizes and ex vivo biological tissue. This is an important step towards a system for real time spectral analysis of OCT data, which would be a powerful diagnosis tool for many diseases e.g. cancer detection at an early stage.
机译:光谱光学相干断层扫描(OCT)是OCT的标准反向散射强度分析的扩展。它可以对组织的分子和结构差异进行深度解析监控。大多数计算光谱数据的方法的缺点之一是处理时间长。系统的和随机的错误也使得结果的解释具有挑战性。我们的方法将现代信号处理工具与强大的图形处理单元(GPU)编程相结合。光谱分析的处理速度接近每秒3兆体素。这使我们能够在几秒钟内分析多个B扫描,并将结果显示为三维数据集。除了对频域OCT的常规处理之外,我们的算法还包含以下步骤:排除数据中嘈杂部分的质量图,通过短时傅立叶变换进行频谱分析,通过主成分分析进行特征归约,使用K均值进行无监督模式识别渲染基于灰度的反向散射OCT数据,该OCT数据与基于模式识别算法结果的色图叠加。我们的设置提供了650-950nm的光谱范围,并进行了优化以抑制色差。在原理验证的尝试中,我们已经在幻像样品中实现了其他光谱对比,包括不同大小的散射微球和离体生物组织。这是迈向OCT数据实时频谱分析系统的重要一步,该系统将成为许多疾病(例如传染病)的强大诊断工具。早期发现癌症。

著录项

  • 来源
    《Biomedical applications of light scattering VII》|2013年|859215.1-859215.7|共7页
  • 会议地点 San Francisco CA(US)
  • 作者单位

    Photonics and Terahertz-Technology, Ruhr-University Bochum, Universitaetsstr. 150,44801 Bochum, Germany;

    Photonics and Terahertz-Technology, Ruhr-University Bochum, Universitaetsstr. 150,44801 Bochum, Germany;

    Facuity of Electrical and Electronic Engineering, University of applied science Georg Agricola,Herner Str 45, 44787 Bochum;

    Photonics and Terahertz-Technology, Ruhr-University Bochum, Universitaetsstr. 150,44801 Bochum, Germany;

    Facuity of Electrical and Electronic Engineering, University of applied science Georg Agricola,Herner Str 45, 44787 Bochum;

    Photonics and Terahertz-Technology, Ruhr-University Bochum, Universitaetsstr. 150,44801 Bochum, Germany;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Optical Coherence Tomography; Spectroscopy;

    机译:光学相干断层扫描;光谱学;
  • 入库时间 2022-08-26 14:30:58

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