首页> 外文会议>Nuclear Science Symposium and Medical Imaging Conference (NSS/MIC), 2011 IEEE >An SVD based analysis of the noise properties of a point cloud mesh reconstruction method
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An SVD based analysis of the noise properties of a point cloud mesh reconstruction method

机译:基于SVD的点云网格重建方法噪声特性分析

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Tomographic reconstruction on an irregular grid may be superior to reconstruction on a regular grid. This is achieved through an appropriate choice of the image space model, the selection of an optimal set of points and the use of any available prior information during the reconstruction process. Accordingly, a number of reconstruction related parameters must be optimized for best performance. In this work, a 3D point cloud tetrahedral mesh reconstruction method is evaluated for quantitative tasks. A linear image model is employed to obtain the reconstruction system matrix and five point generation strategies are studied. The evaluation is performed using the recovery coefficient, as well as, voxel and template based estimates of bias and variance measures, computed over specific regions in the reconstructed image. A similar analysis is performed for regular grid reconstructions that use voxel basis functions. The maximum likelihood expectation maximization reconstruction algorithm is used. For the tetrahedral reconstructions, of the five point generation methods that are evaluated, three use image priors. For evaluation purposes, an object consisting of overlapping spheres with varying activity is simulated. The exact parallel projection data of this object is obtained analytically using a parallel projector and multiple Poisson noise realizations of this exact data are generated and reconstructed using the different point generation strategies. The unconstrained nature of point placement in some of the irregular mesh based reconstruction strategies has superior activity recovery for small, low contrast image regions. The results show that, with an appropriately generated set of mesh points, the irregular grid reconstruction methods can out-perform reconstructions on a regular grid for mathematical phantoms, in terms of the performance measures evaluated.
机译:在不规则网格上的层析成像重建可能优于在规则网格上的重建。这是通过适当选择图像空间模型,选择最佳点集以及在重建过程中使用任何可用的先验信息来实现的。因此,必须优化许多与重建有关的参数以获得最佳性能。在这项工作中,评估了3D点云四面体网格重建方法的定量任务。利用线性图像模型获得重建系统矩阵,并研究了五点生成策略。使用恢复系数以及在重建图像中特定区域上计算出的基于偏差和方差量度的基于体素和模板的估计来执行评估。对于使用体素基础函数的常规网格重建,执行了类似的分析。使用最大似然期望最大化重构算法。对于四面体重建,在评估的五种点生成方法中,三种使用图像先验。为了进行评估,模拟了一个由具有不同活动的重叠球组成的对象。使用并行投影仪以解析方式获得此对象的精确平行投影数据,并使用不同的点生成策略来生成和重构此精确数据的多个泊松噪声实现。在一些基于不规则网格的重建策略中,点放置的不受限制的性质对于较小的低对比度图像区域具有出色的活动恢复能力。结果表明,通过适当地生成一组网格点,就评估的性能指标而言,不规则的网格重建方法在数学模型上的性能优于常规的网格重建。

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