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首页> 外文期刊>Medical Imaging, IEEE Transactions on >Spatio-Temporal Data Fusion for 3D+T Image Reconstruction in Cerebral Angiography
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Spatio-Temporal Data Fusion for 3D+T Image Reconstruction in Cerebral Angiography

机译:时空数据融合在脑血管造影中进行3D + T图像重建

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摘要

This paper provides a framework for generating high resolution time sequences of 3D images that show the dynamics of cerebral blood flow. These sequences have the potential to allow image feedback during medical procedures that facilitate the detection and observation of pathological abnormalities such as stenoses, aneurysms, and blood clots. The 3D time series is constructed by fusing a single static 3D model with two time sequences of 2D projections of the same imaged region. The fusion process utilizes a variational approach that constrains the volumes to have both smoothly varying regions separated by edges and sparse regions of nonzero support. The variational problem is solved using a modified version of the Gauss–Seidel algorithm that exploits the spatio-temporal structure of the angiography problem. The 3D time series results are visualized using time series of isosurfaces, synthetic X-rays from arbitrary perspectives or poses, and 3D surfaces that show arrival times of the contrasted blood front using color coding. The derived visualizations provide physicians with a previously unavailable wealth of information that can lead to safer procedures, including quicker localization of flow altering abnormalities such as blood clots, and lower procedural X-ray exposure. Quantitative SNR and other performance analysis of the algorithm on computational phantom data are also presented.
机译:本文提供了一个框架,用于生成高分辨率的3D图像时间序列,以显示脑血流的动态。这些序列可能允许在医疗程序中进行图像反馈,从而有助于检测和观察病理异常,例如狭窄,动脉瘤和血凝块。 3D时间序列是通过将单个静态3D模型与相同成像区域的2D投影的两个时间序列融合而构建的。融合过程利用了一种变分方法,该方法将体积约束为具有平滑变化的区域(由边缘分隔)和非零支撑的稀疏区域。使用改进版本的高斯-塞德尔算法解决了变分问题,该算法利用了血管造影问题的时空结构。使用等值面的时间序列,来自任意视角或姿势的合成X射线以及使用彩色编码显示对比后的血锋到达时间的3D表面,可以可视化3D时间序列结果。派生的可视化为医师提供了以前无法获得的大量信息,这些信息可以导致更安全的程序,包括更快地定位改变血液流动异常的血流和降低程序性X射线暴露量。还介绍了在计算体模数据上的定量SNR和该算法的其他性能分析。

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