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Investigation of iterative image reconstruction in three-dimensional optoacoustic tomography

机译:三维光声层析成像中迭代图像重建的研究

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摘要

Iterative image reconstruction algorithms for optoacoustic tomography (OAT), also known as photoacoustic tomography, have the ability to improve image quality over analytic algorithms due to their ability to incorporate accurate models of the imaging physics, instrument response and measurement noise. However, to date, there have been few reported attempts to employ advanced iterative image reconstruction algorithms for improving image quality in three-dimensional (3D) OAT. In this work, we implement and investigate two iterative image reconstruction methods for use with a 3D OAT small animal imager: namely a penalized least-squares (PLS) method employing a quadratic smoothness penalty and a PLS method employing a total variation norm penalty. The reconstruction algorithms employ accurate models of the ultrasonic transducer impulse responses. Experimental data sets are employed to compare the performances of the iterative reconstruction algorithms to that of a 3D filtered backprojection (FBP) algorithm. By the use of quantitative measures of image quality, we demonstrate that the iterative reconstruction algorithms can mitigate image artifacts and preserve spatial resolution more effectively than FBP algorithms. These features suggest that the use of advanced image reconstruction algorithms can improve the effectiveness of 3D OAT while reducing the amount of data required for biomedical applications.
机译:用于光声层析成像(OAT)的迭代图像重建算法,也称为光声层析成像,由于具有结合成像物理学,仪器响应和测量噪声的准确模型的能力,因此具有比分析算法更高的图像质量的能力。但是,迄今为止,几乎没有报道尝试使用高级迭代图像重建算法来改善三维(3D)OAT中的图像质量的尝试。在这项工作中,我们实现并研究了与3D OAT小动物成像仪一起使用的两种迭代图像重建方法:即采用二次平滑度罚分的惩罚最小二乘(PLS)方法和采用总变化范数罚分的PLS方法。重建算法采用了超声换能器脉冲响应的精确模型。实验数据集用于比较迭代重建算法与3D滤波反投影(FBP)算法的性能。通过使用图像质量的定量度量,我们证明了迭代重建算法可以比FBP算法更有效地减轻图像伪像并保留空间分辨率。这些功能表明,使用先进的图像重建算法可以提高3D OAT的有效性,同时减少生物医学应用所需的数据量。

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