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从使用高分辨率图像探测器拍摄的人体头部模型图像中进行散射估计并去除反散射网格线伪影。

Scatter estimation and removal of anti-scatter grid-line artifacts from anthropomorphic head phantom images taken with a high resolution image detector.

作者信息

Rana R, Jain A, Shankar A, Bednarek D R, Rudin S

机构信息

Toshiba Stroke and Vascular Research Center, University at Buffalo, Buffalo, NY 14214.

出版信息

Proc SPIE Int Soc Opt Eng. 2016 Feb 27;9783. doi: 10.1117/12.2216833. Epub 2016 Mar 31.

Abstract

In radiography, one of the best methods to eliminate image-degrading scatter radiation is the use of anti-scatter grids. However, with high-resolution dynamic imaging detectors, stationary anti-scatter grids can leave grid-line shadows and moiré patterns on the image, depending upon the line density of the grid and the sampling frequency of the x-ray detector. Such artifacts degrade the image quality and may mask small but important details such as small vessels and interventional device features. Appearance of these artifacts becomes increasingly severe as the detector spatial resolution is improved. We have previously demonstrated that, to remove these artifacts by dividing out a reference grid image, one must first subtract the residual scatter that penetrates the grid; however, for objects with anatomic structure, scatter varies throughout the FOV and a spatially differing amount of scatter must be subtracted. In this study, a standard stationary Smit-Rontgen X-ray grid (line density - 70 lines/cm, grid ratio - 13:1) was used with a high-resolution CMOS detector, the Dexela 1207 (pixel size - 75 micron) to image anthropomorphic head phantoms. For a 15 × 15cm FOV, scatter profiles of the anthropomorphic head phantoms were estimated then iteratively modified to minimize the structured noise due to the varying grid-line artifacts across the FOV. Images of the anthropomorphic head phantoms taken with the grid, before and after the corrections, were compared demonstrating almost total elimination of the artifact over the full FOV. Hence, with proper computational tools, anti-scatter grid artifacts can be corrected, even during dynamic sequences.

摘要

在放射成像中,消除降低图像质量的散射辐射的最佳方法之一是使用防散射格栅。然而,对于高分辨率动态成像探测器,固定的防散射格栅会在图像上留下格栅线阴影和莫尔条纹,这取决于格栅的线密度和X射线探测器的采样频率。这些伪影会降低图像质量,并可能掩盖一些小但重要的细节,如小血管和介入设备特征。随着探测器空间分辨率的提高,这些伪影的出现会越来越严重。我们之前已经证明,为了通过除以参考格栅图像来去除这些伪影,必须首先减去穿透格栅的残余散射;然而,对于具有解剖结构的物体,散射在整个视野范围内是变化的,必须减去空间上不同量的散射。在本研究中,使用标准的固定Smit-Rontgen X射线格栅(线密度 - 70线/厘米,格栅比 - 13:1)与高分辨率CMOS探测器Dexela 1207(像素尺寸 - 75微米)对仿真人头模型进行成像。对于15×15厘米的视野,估计仿真人头模型的散射分布,然后进行迭代修正,以最小化由于视野范围内变化的格栅线伪影而产生的结构化噪声。比较了在修正前后使用格栅拍摄的仿真人头模型的图像,结果表明在整个视野范围内几乎完全消除了伪影。因此,借助适当的计算工具,即使在动态序列期间,防散射格栅伪影也可以得到校正。

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