通用轨道设计可消除金属工件。

Grace J Gang, J Webster Stayman
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引用次数: 0

摘要

目标:金属伪影是 CT 和锥形束 CT 中的一个老大难问题。方法:我们将与金属相交的任何测量值视为缺失数据,并旨在设计一种通用轨道,以普遍适应任意金属形状和位置。我们采用基于 Tuy 条件的局部采样完整性度量来量化金属存在时的采样范围。在设计轨道时,我们采用了所有可能的金属位置的最大最小目标。作为频率、最大倾斜角和轨道范围的函数,对一类简单的正弦轨道进行了评估。在成像台上对这些轨道进行了实验实施,并在两个模型上进行了评估,一个模型包含金属球,另一个包含用于脊柱固定的椎弓根螺钉组件。主要结果:对目标的理论评估倾向于具有大倾斜角和大轨道范围的正弦曲线轨道。此外,利用冗余方位角采样非冗余数据的轨道具有更好的性能,例如 360°采集的偶数或非整数频率正弦轨道。实验数据支持理论评估中观察到的趋势。使用偶数或非整数频率轨道进行重建时,条纹伪影更少,背景细节更清晰,分辨率更高,即使存在多个金属物体,甚至在没有 MAR 算法的情况下也是如此。非圆形轨道和 MAR 算法的组合方法性能最佳。这项研究表明,正弦波轨道通常对金属伪影具有很强的抗干扰能力,为提高介入成像的图像质量提供了一条途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Universal orbit design for metal artifact elimination.

Objective.Metal artifacts are a persistent problem in CT and cone-beam CT. In this work, we propose to reduce or even eliminate metal artifacts by providing better sampling of data using non-circular orbits.Approach.We treat any measurements intersecting metal as missing data, and aim to design a universal orbit that can generally accommodate arbitrary metal shapes and locations. We adapted a local sampling completeness metric based on Tuy's condition to quantify the extent of sampling in the presence of metal. A maxi-min objective over all possible metal locations was used for orbit design. A simple class of sinusoidal orbits was evaluated as a function of frequencies, maximum tilt angles, and orbital extents. Experimental implementation of these orbits were performed on an imaging bench and evaluated on two phantoms, one containing metal balls and the other containing a pedicle screw assembly for spine fixation. Metal artifact reduction (MAR) performance was compared amongst three approaches: non-circular orbits only, algorithmic correction only, and a combined approach.Main results.Theoretical evaluations of the objective favor sinusoidal orbits with large tilt angles and large orbital extents. Furthermore, orbits that leverage redundant azimuthal angles to sample non-redundant data have better performance, e.g. even or non-integer frequency sinusoids for a 360° acquisition. Experimental data support the trends observed in theoretical evaluations. Reconstructions using even or non-integer frequency orbits present less streaking artifacts and background details with finer resolution, even when multiple metal objects are present and even in the absence of MAR algorithms. The combined approach of non-circular orbits and MAR algorithm yields the best performance. The observed trend in image quality is supported by quantitative measures of sampling and severity of streaking artifact.Significance.This work demonstrates that sinusoidal orbits are generally robust against metal artifacts and can provide an avenue for improved image quality in interventional imaging.

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