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Numerical evaluation of linearized image reconstruction based on finite element method for biomedical photoacoustic imaging

机译:基于有限元方法的生物医学光声成像线性化图像重建的数值评估

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摘要

An image reconstruction algorithm for biomedical photoacoustic imaging is discussed. The algorithm solves the inverse problem of the photoacoustic phenomenon in biological media and images the distribution of large optical absorption coefficients, which can indicate diseased tissues such as cancers with angiogenesis and the tissues labeled by exogenous photon absorbers. The linearized forward problem, which relates the absorption coefficients to the detected photoacoustic signals, is formulated by using photon diffusion and photoacoustic wave equations. Both partial differential equations are solved by a finite element method. The inverse problem is solved by truncated singular value decomposition, which reduces the effects of the measurement noise and the errors between forward modeling and actual measurement systems. The spatial resolution and the robustness to various factors affecting the image reconstruction are evaluated by numerical experiments with 2D geometry.
机译:讨论了一种用于生物医学光声成像的图像重建算法。该算法解决了生物介质中光声现象的反问题,并对大的光吸收系数的分布进行了成像,这可以指示患病的组织,例如具有血管生成的癌症以及被外源光子吸收剂标记的组织。通过使用光子扩散和光声波方程式,可以将吸收系数与检测到的光声信号相关联的线性正向问题。这两个偏微分方程都是通过有限元法求解的。通过截断奇异值分解解决了逆问题,这减少了测量噪声的影响以及正向建模与实际测量系统之间的误差。通过二维几何实验,评估了空间分辨率和对影响图像重建的各种因素的鲁棒性。

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