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Prior image constrained compressed sensing (PICCS): a method to accurately reconstruct dynamic CT images from highly undersampled projection data sets.

机译:先验图像约束压缩传感(PICCS):一种从高度欠采样的投影数据集中准确重建动态CT图像的方法。

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摘要

When the number of projections does not satisfy the Shannon/Nyquist sampling requirement, streaking artifacts are inevitable in x-ray computed tomography (CT) images reconstructed using filtered backprojection algorithms. In this letter, the spatial-temporal correlations in dynamic CT imaging have been exploited to sparsify dynamic CT image sequences and the newly proposed compressed sensing (CS) reconstruction method is applied to reconstruct the target image sequences. A prior image reconstructed from the union of interleaved dynamical data sets is utilized to constrain the CS image reconstruction for the individual time frames. This method is referred to as prior image constrained compressed sensing (PICCS). In vivo experimental animal studies were conducted to validate the PICCS algorithm, and the results indicate that PICCS enables accurate reconstruction of dynamic CT images using about 20 view angles, which corresponds to an under-sampling factor of 32. This undersampling factor implies a potential radiation dose reduction by a factor of 32 in myocardial CT perfusion imaging.
机译:当投影的数量不满足Shannon / Nyquist采样要求时,在使用滤波反投影算法重建的X射线计算机断层扫描(CT)图像中,条纹伪影是不可避免的。在这封信中,已经利用动态CT成像中的时空相关性来稀疏动态CT图像序列,并将新提出的压缩感知(CS)重建方法应用于目标图像序列的重建。从交错的动态数据集的联合中重建的先验图像用于约束各个时间帧的CS图像重建。此方法称为先验图像约束压缩传感(PICCS)。进行了体内实验动物研究,以验证PICCS算法的有效性,结果表明PICCS能够使用约20个视角准确地重建动态CT图像,这对应于32的欠采样因子。该欠采样因子意味着潜在的辐射心肌CT灌注成像中剂量减少32倍。

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