光学
断层摄影术
材料科学
多光谱图像
穿透深度
衰减系数
成像体模
吸收(声学)
光学层析成像
迭代重建
通量
高光谱成像
生物医学工程
物理
计算机科学
激光器
人工智能
医学
作者
Frédéric Brochu,Joanna Brunker,James Joseph,Michal R. Tomaszewski,Stefan Morscher,Sarah E. Bohndiek
标识
DOI:10.1109/tmi.2016.2607199
摘要
Optoacoustic tomography is a fast developing imaging modality, combining the high contrast available from optical excitation of tissue with the high resolution and penetration depth of ultrasound detection. Light is subject to both absorption and scattering when traveling through tissue; adequate knowledge of tissue optical properties and hence the spatial fluence distribution is required to create an optoacoustic image that is directly proportional to chromophore concentrations at all depths. Using data from a commercial multispectral optoacoustic tomography (MSOT) system, we implemented an iterative optimization for fluence correction based on a finite-element implementation of the delta-Eddington approximation to the Radiative Transfer Equation (RTE). We demonstrate a linear relationship between the image intensity and absorption coefficients across multiple wavelengths and depths in phantoms. We also demonstrate improved feature visibility and spectral recovery at depth in phantoms and with in vivo measurements, suggesting our approach could in the future enable quantitative extraction of tissue absorption coefficients in biological tissue.
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