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Enhanced Spatial Resolution in 2D CT-Reconstruction without Filtered Back Projection: DIRECTT

机译:增强了2D CT重建中的空间分辨率,无需滤波投影:Direct

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We report on novel developments of the DIRECTT (Direct Iterative Reconstruction of Computed Tomography Trajectories) algorithm. Details are discussed for model calculations in order to elucidate its universal character for parallel and fan beam geometry. Our approach represents a promising alternative to the conventional filtered back-projection (FP). Instead of Fourier transforming single projections DIRECTT traces single sinoidal-like trajectories in Radon space which are selected from the set of all possible trajectories by appropriate criteria such as their angular averaged (filtered) weight or contrast to adjacent trajectories. The respective reconstruction elements are added to form an array. The projection (Radon transform) of these elements is then subtracted from the original data set. The obtained residual sinogram is treated the same way in the subsequent iteration steps until a pre-selected criterion of convergence is reached. A very precise projection of a gapless reconstruction array is essential for enhanced spatial resolution also taking into account the actual size and shape of its elements (in this case squares). Abandonment of the spatial filtering overcomes some serious restrictions of the FP: (i) Nyquist's theorem does not refer to the detector pixel sampling (for each single projection!) but holds for the non-equidistant angular oversampling, i.e. the achievable spatial resolution is no longer limited to twice the detector pixel size but can be enhanced considerably (even to subpixels in terms of detector elements) by choosing appropriate small increments of rotation, (ii) there is no need for complete data sets, even missing projections are well tolerated, and (iii) region-of-interest reconstructions perform without considerable artifacts.
机译:我们报告了Directt的新颖发展(直接迭代重建计算断层扫描轨迹)算法。讨论了用于模型计算的细节,以阐明其对平行和风扇梁几何形状的通用性质。我们的方法代表了传统的过滤后投影(FP)的有希望的替代方案。代替傅里叶变换单凸起DirectT横幅在氡空间中的单个Sinoidal样轨迹,其通过适当的标准从所有可能的轨迹的设置中选择,例如它们的角度平均(过滤)重量或与相邻轨迹的对比度。添加各个重建元素以形成阵列。然后从原始数据集中中减去这些元素的投影(氡变换)。在随后的迭代步骤中,所获得的残留的Sinogram在随后的迭代步骤中进行处理,直到达到预先选择的收敛标准。无间隙重建阵列的非常精确的投影对于增强的空间分辨率也是必不可少的,也考虑其元素的实际尺寸和形状(在这种情况下方)。放弃空间过滤克服了FP的一些严重限制:(i)奈奎斯特的定理不参考探测器像素采样(每次单个投影!),但保持非等距角度过采样,即可实现的空间分辨率是没有通过选择适当的小增量旋转,(ii)不需要完整的数据集,可以相当于探测器像素尺寸的两倍(甚至对检测器元件方面的子像素)的两倍。(ii)甚至不需要完整的数据集,甚至缺少投影都是良好的容忍, (iii)兴趣区域的重建,没有相当大的工件的表现。

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