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首页> 外文期刊>Physics in medicine and biology. >Partial volume effect correction in PET using regularized iterative deconvolution with variance control based on local topology
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Partial volume effect correction in PET using regularized iterative deconvolution with variance control based on local topology

机译:基于局部拓扑的带方差控制的正则迭代解卷积在PET中的部分体积效应校正

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Correcting positron emission tomography (PET) images for the partial volume effect (PVE) due to the limited resolution of PET has been a long-standing challenge. Various approaches including incorporation of the system response function in the reconstruction have been previously tested. We present a post-reconstruction PVE correction based on iterative deconvolution using a 3D maximum likelihood expectation-maximization (MLEM) algorithm. To achieve convergence we used a one step late (OSL) regularization procedure based on the assumption of local monotonic behavior of the PET signal following Alenius et al. This technique was further modified to selectively control variance depending on the local topology of the PET image. No prior 'anatomic' information is needed in this approach. An estimate of the noise properties of the image is used instead. The procedure was tested for symmetric and isotropic deconvolution functions with Gaussian shape and full width at half-maximum (FWHM) ranging from 6.31 mm to infinity. The method was applied to simulated and experimental scans of the NEMA NU 2 image quality phantom with the GE Discovery LS PET/CT scanner. The phantom contained uniform activity spheres with diameters ranging from 1 cm to 3.7 cm within uniform background. The optimal sphere activity to variance ratio was obtained when the deconvolution function was replaced by a step function few voxels wide. In this case, the deconvolution method converged in ~3–5 iterations for most points on both the simulated and experimental images. For the 1 cm diameter sphere, the contrast recovery improved from 12% to 36% in the simulated and from 21% to 55% in the experimental data. Recovery coefficients between 80% and 120% were obtained for all larger spheres, except for the 13 mm diameter sphere in the simulated scan (68%). No increase in variance was observed except for a few voxels neighboring strong activity gradients and inside the largest spheres. Testing the method for patient images increased the visibility of small lesions in non-uniform background and preserved the overall image quality. Regularized iterative deconvolution with variance control based on the local properties of the PET image and on estimated image noise is a promising approach for partial volume effect corrections in PET.
机译:由于PET的分辨率有限,为部分体积效应(PVE)校正正电子发射断层扫描(PET)图像一直是一项长期挑战。先前已经测试了各种方法,包括将系统响应功能合并到重建中。我们提出使用3D最大似然期望最大化(MLEM)算法基于迭代解卷积的重构后PVE校正。为了实现收敛,我们根据Alenius等人的假设,基于PET信号的局部单调性行为,使用了一步一步(OSL)正则化程序。对该技术进行了进一步修改,以根据PET图像的局部拓扑来选择性地控制变化。这种方法不需要事先的“解剖”信息。而是使用图像的噪声属性的估计值。测试了该程序的对称和各向同性反卷积函数,其高斯形状和半最大全宽(FWHM)范围为6.31 mm至无穷大。该方法适用于使用GE Discovery LS PET / CT扫描仪对NEMA NU 2图像质量模型进行模拟和实验扫描。幻影包含均匀的活动球体,直径在1厘米至3.7厘米之间。当将反卷积函数替换为很少的体素宽度的阶跃函数时,可获得最佳的球体活动性与方差之比。在这种情况下,反卷积方法在模拟和实验图像上的大多数点上都以〜3–5次迭代收敛。对于直径为1 cm的球体,对比度恢复在模拟中从12%提高到36%,在实验数据中从21%提高到55%。对于所有更大的球体,除了在模拟扫描中直径为13 mm的球体(68%)之外,其恢复系数都在80%至120%之间。除了几个靠近强活动梯度且在最大球体内部的体素外,未观察到方差的增加。对患者图像进行测试的方法可增加背景不均匀的小病变的可见度,并保留整体图像质量。基于PET图像的局部属性和估计的图像噪声的带方差控制的规则迭代解卷积是PET中部分体积效应校正的一种有前途的方法。

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