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Superiorized polyenergetic reconstruction algorithm for reduction of metal artifacts in CT images

机译:用于减少CT图像中金属伪影的高级多能重构算法

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摘要

Artifacts caused by metal objects such as dental fillings, hip implants, and coronary stents are a significant source of error in many CT scans. These artifacts are caused by numerous factors, including beam hardening, noise, photon starvation, partial volume and exponential edge gradient effects, and scatter. We propose an iterative algorithm for CT image reconstruction which reduces these artifacts. The algorithm does so by (1) accurately modeling polyenergetic X-ray data, (2) statistically weighting the X-ray data to reduce the effect of noisy measurements, and (3) incorporating total variation (TV) as a secondary objective. The recently proposed superiorization methodology provides a solid mathematical foundation for our approach. Our numerical experiments indicate that all three of these features of the algorithm play an important role in reducing metal artifacts.
机译:在许多CT扫描中,由金属物体(例如牙科填充物,髋关节植入物和冠状动脉支架)引起的伪影是造成错误的重要原因。这些伪影是由多种因素引起的,包括光束硬化,噪声,光子饥饿,部分体积和指数边缘梯度效应以及散射。我们提出了一种用于CT图像重建的迭代算法,可减少这些伪像。该算法通过(1)对多能X射线数据进行精确建模,(2)对X射线数据进行统计加权以减少噪声测量的影响,以及(3)将总变化量(TV)作为次要目标来实现。最近提出的优势方法论为我们的方法提供了坚实的数学基础。我们的数值实验表明,算法的所有这三个特征在减少金属伪影方面都起着重要作用。

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