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Effects of transverse heterogeneities on the most likely path of protons

机译:横向异质性对最可能的质子路径的影响

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摘要

The use of a most likely path (MLP) formalism for protons to account for the effects of multiple Coulomb scattering has improved the spatial resolution in proton computed tomography (pCT). However, this formalism assumes a homogeneous medium and a continuous scattering of protons. In this paper, we quantify the path prediction error induced by transverse heterogeneities to assess whether correcting for such errors might improve the spatial resolution of pCT. To this end, we have tracked protons trajectories using Monte Carlo simulations in several phantoms with different heterogeneities. Our results show that transverse heterogeneities induce non Gaussian spatial distributions leading to errors in the prediction of the MLP, reaching 0.4 mm in a 20 cm wide simulated heterogeneity and 0.13 mm in a realistic phantom. It was also shown that when the spatial distributions have more than one peak, a most likely path, if any, has yet to be defined. Transverse heterogeneities also affect energy profiles, which could explain some of the artifacts described in other works and could make the energy cuts usually performed to exclude nuclear events less efficient.
机译:使用用于质子的最可能的路径(MLP)形式主义来解释多个库仑散射的效果,改善了质子计算断层扫描(PCT)中的空间分辨率。然而,这种形式主义呈现均匀的培养基和对质子的连续散射。在本文中,我们量化了横跨异质性引起的路径预测误差,以评估是否校正这些误差可能改善PCT的空间分辨率。为此,我们已经在具有不同异质性的几个幻影中使用Monte Carlo模拟跟踪了质子轨迹。我们的结果表明,横突性诱导导致MLP预测中的误差的非高斯空间分布,在20cm宽的模拟异质性和0.13mm处达到0.4mm的误差。还显示出来,当空间分布具有多于一个峰值时,最可能的路径(如果有的话)尚未定义。横向异质性也会影响能量谱,这可以解释其他作品中描述的一些伪像,并且可以使通常进行的能量切割以排除核事件的效率。

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