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Incomplete projection reconstruction of computed tomography based on the modified discrete algebraic reconstruction technique

机译:基于改进的离散代数重建技术的计算断层扫描的不完整投影重建

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摘要

Based on the discrete algebraic reconstruction technique (DART), this study aims to address and test a new improved algorithm applied to incomplete projection data to generate a high quality reconstruction image by reducing the artifacts and noise in computed tomography. For the incomplete projections, an augmented Lagrangian based on compressed sensing is first used in the initial reconstruction for segmentation of the DART to get higher contrast graphics for boundary and non-boundary pixels. Then, the block matching 3D filtering operator was used to suppress the noise and to improve the gray distribution of the reconstructed image. Finally, simulation studies on the polychromatic spectrum were performed to test the performance of the new algorithm. Study results show a significant improvement in the signal-to-noise ratios (SNRs) and average gradients (AGs) of the images reconstructed from incomplete data. The SNRs and AGs of the new images reconstructed by DART-ALBM were on average 30%-40% and 10% higher than the images reconstructed by DART algorithms. Since the improved DART-ALBM algorithm has a better robustness to limited-view reconstruction, which not only makes the edge of the image clear but also makes the gray distribution of non-boundary pixels better, it has the potential to improve image quality from incomplete projections or sparse projections.
机译:本研究基于离散代数重建技术(DART),旨在通过减少计算机断层扫描中的伪影和噪声来解决和测试应用于不完整投影数据的新改进算法,以产生高质量的重建图像。对于不完整的预测,基于压缩感测的增强拉格朗日首先用于初始重建以进行镖的分割,以获得更高的边界和非边界像素的对比度图形。然后,使用块匹配的3D滤波运算符来抑制噪声并提高重建图像的灰度分布。最后,进行了对多色光谱的模拟研究以测试新算法的性能。研究结果表明,从不完全数据重建的图像的信号 - 噪声比率(SNRS)和平均梯度(AGS)显着改善。 Dart-Albm重建的新图像的SNR和AG平均为DART算法重建的图像高度为30%-40%和10%。由于改进的Dart-albm算法具有更好的鲁棒性对有限的视图重建,因此不仅使图像的边缘清晰,而且更好地使非边界像素的灰色分布更好,因此它有可能从不完整的不完整提高图像质量投影或稀疏投影。

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