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首页> 外文期刊>Physics in medicine and biology. >A simple derivation and analysis of a helical cone beam tomogrpahic algorithm for long object imaging via a novel definition of region of interest
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A simple derivation and analysis of a helical cone beam tomogrpahic algorithm for long object imaging via a novel definition of region of interest

机译:通过感兴趣区域的新定义,对长目标成像的螺旋锥束层析成像算法进行简单推导和分析

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摘要

We derive and analyse a simple algorithm first proposed by Kudo et al (2001 Proc. 2001 Meeting on Fully 3D Image Reconstruction in Radiology and Nuclear Medicine (Pcific Grove, CA) pp 7-10) for long object imaging from truncated helical cone beam data via a novel definition of region of interest (ROI). Our approach is based on the theory of short object imaging by Kudo et al (1998 Phys. Med. Biol. 43 2885-909). One of the key findings in their work is that filtering of the truncated projection can be divided into two parts: one, finite in the axial direction, results from ramp filtering the data within the Tam window. The other, infinite in the z direction, results from unbounded filtering of ray sums over PI lines only. We show that for an ROI defined by PI lines emanating from the initial and final source positions on a helical segment, the boundary data which would otherwise contaminate the reconstruction of the ROI can be completely excluded. This novel definition of the ROI leads to a simple algorithm for long object imaging. The overscan of the algorithm is analytically calculated and it is the same as that of the zero boundary method. The reconstructed ROI can be divided into two regions: one is minimally contaminated by the portion outside the ROI, while the other is reconstructed free of contamination. We validate the algorithm with a 3D Shepp-Logan phantom and a disc phantom.
机译:我们推导并分析了一种简单的算法,该算法首先由Kudo等人提出(2001年Proc。2001年放射与核医学全3D图像重建会议(加利福尼亚州Pcific Grove)第7-10页),用于从截断的螺旋锥束数据中进行长物体成像。通过感兴趣区域(ROI)的新颖定义。我们的方法基于Kudo等人(1998 Phys。Med。Biol。43 2885-909)的短物体成像理论。他们工作的主要发现之一是对截断的投影的过滤可以分为两部分:一是轴向有限,这是通过对Tam窗口内的数据进行斜坡过滤而得出的。另一个在z方向上是无限的,仅是由于对PI线上的射线总和进行了无限制的滤波而导致的。我们表明,对于由从螺旋段上的初始和最终源位置发出的PI线定义的ROI,可以完全排除会污染ROI重建的边界数据。 ROI的这一新颖定义导致了用于长物体成像的简单算法。该算法的过扫描是通过解析计算得出的,与零边界方法相同。重建的ROI可以分为两个区域:一个区域受ROI外的部分污染最小,而另一个区域则无污染。我们使用3D Shepp-Logan幻像和光盘幻像来验证算法。

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