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Multiresolution spatiotemporal mechanical model of the heart as a prior to constrain the solution for 4D models of the heart

机译:先于心脏的多分辨率时空力学模型来约束心脏4D模型的解决方案

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摘要

In several nuclear cardiac imaging applications (SPECT and PET), images are formed by reconstructing tomographic data using an iterative reconstruction algorithm with corrections for physical factors involved in the imaging detection process and with corrections for cardiac and respiratory motion. The physical factors are modeled as coefficients in the matrix of a system of linear equations and include attenuation, scatter, and spatially varying geometric response. The solution to the tomographic problem involves solving the inverse of this system matrix. This requires the design of an iterative reconstruction algorithm with a statistical model that best fits the data acquisition. The most appropriate model is based on a Poisson distribution. Using Bayes Theorem, an iterative reconstruction algorithm is designed to determine the maximum a posteriori estimate of the reconstructed image with constraints that maximizes the Bayesian likelihood function for the Poisson statistical model. The a priori distribution is formulated as the joint entropy (JE) to measure the similarity between the gated cardiac PET image and the cardiac MRI cine image modeled as a FE mechanical model. The developed algorithm shows the potential of using a FE mechanical model of the heart derived from a cardiac MRI cine scan to constrain solutions of gated cardiac PET images.
机译:在一些核心脏成像应用中(SPECT和PET),通过使用迭代重建算法重建层析成像数据来形成图像,该算法具有对成像检测过程中涉及的物理因素的校正以及对心脏和呼吸运动的校正。物理因子被建模为线性方程组矩阵中的系数,并且包括衰减,散射和空间变化的几何响应。层析成像问题的解决方案涉及解决此系统矩阵的逆问题。这需要设计一种迭代重建算法,该算法具有最适合数据采集的统计模型。最合适的模型基于泊松分布。使用贝叶斯定理,设计了一种迭代重建算法,以确定具有最大化泊松统计模型的贝叶斯似然函数的约束条件的重建图像的最大后验估计。先验分布被公式化为联合熵(JE),以测量门控的心脏PET图像和建模为FE机械模型的心脏MRI电影图像之间的相似性。所开发的算法显示了使用从心脏MRI电影扫描得出的心脏的FE机械模型来约束门控心脏PET图像的解决方案的潜力。

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