锥形束微ct成像几何参数估计的实用改进

S.A. Sawyer, E. Frey
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引用次数: 6

摘要

系统几何偏差的精确物理测量是困难的,因此需要一种精确的几何参数估计方法。已经提出了几种方法,包括在多个投影视图中测量球体的投影。对于高分辨率微ct系统,球心投影位置的估计精度是决定几何参数精度的关键因素。我们研究了几种改进球心估计的方法。我们模拟了不同直径的球体,并使用了几种方法来估计投影球体中心的位置。将估计的中心位置作为几何参数估计方法的输入,以评估对几何参数精度的影响。研究的中心估计方法包括计算质心和用高斯方程或解析方程拟合投影。我们发现,当拟合球体的投影方程时,真实中心位置与估计中心位置之间的差异较小。此外,使用较小的球体可以提高估计精度。使用由三个直径为1毫米的球体组成的幻影,并使用曲线拟合来估计球体中心的位置,我们能够在原型物理微ct系统上获得42 /spl mu/m像素尺寸的无伪影重建。
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Practical improvement of geometric parameter estimation for cone beam microCT imaging
Accurate physical measurement of system geometric misalignments is difficult, so an accurate method of estimating the geometric parameters is needed. Several methods have been proposed that involve measuring projections of spheres at multiple projection views. For high resolution microCT systems, the estimation accuracy of the projected position of the sphere center is a critical factor in determining the geometric parameter accuracy. We have investigated several methods for improving the sphere center estimation. We simulated spheres of varying diameters and used several methods to estimate the positions of the projected sphere centers. The estimated center positions served as the input to methods for estimating the geometric parameters in order to assess the effect on geometric parameter accuracy. The center estimation methods investigated included computing the centroid and fitting the projection with a Gaussian or the analytic equation for the cone beam projection of a sphere. We found that the differences between the true and estimated projected center positions were smaller when fitted with the sphere's projection equation. In addition, using smaller spheres resulted in improved estimate accuracy. Using a phantom consisting of three 1 mm diameter spheres and with curve fitting to estimate the position of the spherical center, we were are able to obtain artifact-free reconstructions for a 42 /spl mu/m pixel size on our prototype physical microCT system.
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