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首页> 外文期刊>Medical Physics >A motion-compensated scheme for helical cone-beam reconstruction in cardiac CT angiography.
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A motion-compensated scheme for helical cone-beam reconstruction in cardiac CT angiography.

机译:心脏CT血管造影中螺旋锥束重建的运动补偿方案。

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Since coronary heart disease is one of the main causes of death all over the world, cardiac computed tomography (CT) imaging is an application of very high interest in order to verify indications timely. Due to the cardiac motion, electrocardiogram (ECG) gating has to be implemented into the reconstruction of the measured projection data. However, the temporal and spatial resolution is limited due to the mechanical movement of the gantry and due to the fact that a finite angular span of projections has to be acquired for the reconstruction of each voxel. In this article, a motion-compensated reconstruction method for cardiac CT is described, which can be used to increase the signal-to-noise ratio or to suppress motion blurring. Alternatively, it can be translated into an improvement of the temporal and spatial resolution. It can be applied to the entire heart in common and to high contrast objects moving with the heart in particular, such as calcified plaques or devices like stents. The method is basedon three subsequent steps: As a first step, the projection data acquired in low pitch helical acquisition mode together with the ECG are reconstructed at multiple phase points. As a second step, the motion-vector field is calculated from the reconstructed images in relation to the image in a reference phase. Finally, a motion-compensated reconstruction is carried out for the reference phase using those projections, which cover the cardiac phases for which the motion-vector field has been determined.
机译:由于冠心病是全世界的主要死亡原因之一,因此,心脏计算机断层扫描(CT)成像是人们非常感兴趣的一种应用,目的是及时验证适应症。由于心脏运动,必须将心电图(ECG)门控实施到所测量的投影数据的重建中。但是,由于机架的机械运动以及由于必须重建每个体素必须获取有限的投影角度范围这一事实,时间和空间分辨率受到限制。在本文中,介绍了一种用于心脏CT的运动补偿重建方法,该方法可用于增加信噪比或抑制运动模糊。或者,可以将其转换为时间和空间分辨率的改善。它可以应用于整个心脏,尤其适用于随心脏移动的高对比度对象,例如钙化斑块或诸如支架之类的装置。该方法基于三个后续步骤:作为第一步,在多个相位点上重建以低螺距螺旋采集模式采集的投影数据以及ECG。作为第二步骤,根据相对于参考阶段中的图像的重构图像来计算运动矢量场。最后,使用那些覆盖了已经确定运动矢量场的心脏相位的投影,对参考相位进行运动补偿的重建。

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