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A segmentation-based method for metal artifact reduction.

机译:一种基于分割的金属伪影减少方法。

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RATIONALE AND OBJECTIVES: We propose a novel segmentation-based interpolation method to reduce the metal artifacts caused by surgical aneurysm clips. MATERIALS AND METHODS: Our method consists of five steps: coarse image reconstruction, metallic object segmentation, forward-projection, projection interpolation, and final image reconstruction. The major innovations are 2-fold. First, a state-of-the-art mean-shift technique in the computer vision field is used to improve the accuracy of the metallic object segmentation. Second, a feedback strategy is developed in the interpolation step to adjust the interpolated value based on the prior knowledge that the interpolated values should not be larger than the original ones. Physical phantom and real patient datasets are studied to evaluate the efficacy of our method. RESULTS: Compared to the state-of-the-art segmentation-based method designed previously, our method reduces the metal artifacts by 20-40% in terms of the standard deviation and provides more information for the assessment of soft tissues and osseous structures surrounding the surgical clips. CONCLUSION: Mean shift technique and feedback strategy can help to improve the image quality in terms of reducing metal artifacts.
机译:理由和目的:我们提出一种基于分割的新颖插值方法,以减少由外科动脉瘤夹引起的金属伪影。材料与方法:我们的方法包括五个步骤:粗略图像重建,金属物体分割,正向投影,投影插值和最终图像重建。主要的创新是2倍。首先,计算机视觉领域中最先进的均值漂移技术被用于提高金属物体分割的准确性。其次,在插值步骤中开发了一种反馈策略,以基于插值不应该大于原始值的先验知识来调整插值。研究了体模和真实患者数据集,以评估我们方法的有效性。结果:与先前设计的基于最新分段的方法相比,我们的方法在标准偏差方面将金属伪影减少了20-40%,并为评估周围的软组织和骨结构提供了更多信息手术夹。结论:均值漂移技术和反馈策略可在减少金属伪影方面帮助改善图像质量。

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