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首页> 外文期刊>Medical Physics >Optimization of data acquisition in axial CT CT under the framework of sampling on lattice for suppression of aliasing artifacts with algorithmic detector interlacing
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Optimization of data acquisition in axial CT CT under the framework of sampling on lattice for suppression of aliasing artifacts with algorithmic detector interlacing

机译:用算法检测器交织晶格抽样框架框架轴向CT CT中数据采集的优化

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摘要

Purpose We present the methodology for analyzing and optimizing the sampling structure of projection data acquisition in axial multidetector CT ( MDCT ) and cone beam CT ( CBCT ) under the framework of sampling on lattice. Specifically, we propose and evaluate the scheme of interlaced detector cell binning for suppression of longitudinal aliasing artifacts. In addition, we investigate the proposed scheme's capability of mitigating shift variation in spatial resolution and possibility of improving CB image reconstruction accuracy. Methods Under the framework of sampling on lattice, the proposed scheme is evaluated using an axial MDCT with its architecture similar to that of state‐of‐the‐art CT scanners for diagnostic imaging in the clinic. The widely used FDK algorithm is adopted for image reconstruction, in which either horizontal/latitudinal or vertical/longitudinal interpolation is used for lining‐up of projection data between interlaced detector cells. Using a spiral clock phantom, the capability of suppressing aliasing artifacts and possibility of improving reconstruction accuracy is quantitatively investigated. The in‐plane spatial resolution, as assessed by the modulation transfer function ( MTF ), and its shift‐variant property are quantitatively assessed using wire phantoms, while the through‐plane spatial resolution and its shift‐variant behavior are assessed by the slice sensitivity profile ( SSP ) using thin foil phantoms. Results The preliminary results show that the interlaced detector cell binning can suppress longitudinal aliasing artifacts effectively, while the shift variation in spatial resolution and reconstruction inaccuracy can be mitigated moderately. In addition, the direction, along which the interpolation is carried out to line up projection data between the interlaced detector cells for image reconstruction, plays a significant role in determining the in‐plane and through‐plane spatial resolution. Conclusions The scheme of interlaced detector cell binning with longitudinal interpolation for data lining‐up is an effective solution for suppression of longitudinal aliasing artifacts in axial MDCT and CBCT .
机译:目的,我们提出了在晶格上采样框架下分析和优化分析和优化投影数据采集的采样结构和优化投影数据获取的采样结构。。晶格上的采样框架下的轴向多校制CT(MDCT)和锥形光束CT(CBCT)的采样结构。具体地,我们提出并评估了隔行扫描检测器细胞盒的方案,以抑制纵向锯齿伪像。此外,我们还研究了所提出的方案的空间分辨率变化变化的能力以及提高CB图像重建精度的可能性。在晶格上采样框架下的方法,使用轴向MDCT评估所提出的方案,其架构类似于诊所诊断成像的最新CT扫描仪。采用广泛使用的FDK算法用于图像重建,其中水平/延伸或垂直/纵向插值用于在隔行扫描检测器单元之间的投影数据的排列。使用螺旋时钟幻影,量化抑制混叠伪像的能力以及提高重建精度的可能性。通过调制传递函数(MTF)评估的面内空间分辨率,以及其换档变体特性,使用线幻影定量评估,而通过切片灵敏度评估贯穿平面空间分辨率及其变体变体行为轮廓(SSP)使用薄箔幻影。结果初步结果表明,隔行扫描检测器电池盒可以有效地抑制纵向混叠伪像,而空间分辨率的变化和重建不准确的变化可以适度地减轻。另外,在为图像重建的隔行扫描检测器单元之间进行划线到划线投影数据的方向,在确定面内和平面空间分辨率时起着重要作用。结论数据排列具有纵向插值的隔行扫描检测器细胞分箱的方案是抑制轴向MDCT和CBCT中纵向混叠伪影的有效解决方案。

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