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Improved total variation minimization method for few-view computed tomography image reconstruction

机译:改进的总变异最小化方法用于多视角计算机断层摄影图像重建

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Background Due to the harmful radiation dose effects for patients, minimizing the x-ray exposure risk has been an area of active research in medical computed tomography (CT) imaging. In CT, reducing the number of projection views is an effective means for reducing dose. The use of fewer projection views can also lead to a reduced imaging time and minimizing potential motion artifacts. However, conventional CT image reconstruction methods will appears prominent streak artifacts for few-view data. Inspired by the compressive sampling (CS) theory, iterative CT reconstruction algorithms have been developed and generated impressive results. Method In this paper, we propose a few-view adaptive prior image total variation (API-TV) algorithm for CT image reconstruction. The prior image reconstructed by a conventional analytic algorithm such as filtered backprojection (FBP) algorithm from densely angular-sampled projections. Results To validate and evaluate the performance of the proposed algorithm, we carried out quantitative evaluation studies in computer simulation and physical experiment. Conclusion The results show that the API-TV algorithm can yield images with quality comparable to that obtained with existing algorithms.
机译:背景技术由于对患者有害的辐射剂量影响,使X射线暴露风险最小化一直是医学计算机断层摄影(CT)成像的积极研究领域。在CT中,减少投影视图的数量是减少剂量的有效方法。使用较少的投影视图还可以减少成像时间,并最大程度地减少潜在的运动伪影。但是,常规的CT图像重建方法对于少数视图数据将出现明显的条纹伪影。受压缩采样(CS)理论的启发,迭代CT重建算法得到了发展,并产生了令人印象深刻的结果。方法在本文中,我们提出了一种用于CT图像重建的多视图自适应先验图像总变化(API-TV)算法。通过常规分析算法(例如,过滤后向投影(FBP)算法)从密集的角度采样投影中重建的先验图像。结果为了验证和评估该算法的性能,我们在计算机仿真和物理实验中进行了定量评估研究。结论结果表明,API-TV算法可以产生质量与现有算法相当的图像。

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