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Quantitative proton imaging from multiple physics processes: a proof of concept

机译:来自多个物理过程的质子定量成像:概念验证

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Proton imaging is developed in order to improve the accuracy of charged particle therapy treatment planning. It makes it possible to directly map the relative stopping powers of the materials using the information on the energy loss of the protons. In order to reach a satisfactory spatial resolution in the reconstructed images, the position and direction of each particle is recorded upstream and downstream from the patient. As a consequence of individual proton detection, information on the transmission rate and scattering of the protons is available. Image reconstruction processes are proposed to make use of this information. A proton tomographic acquisition of an anthropomorphic head phantom was simulated. The transmission rate of the particles was used to reconstruct a map of the macroscopic cross section for nuclear interactions of the materials. A two-step iterative reconstruction process was implemented to reconstruct a map of the inverse scattering length of the materials using the scattering of the protons. Results indicate that, while the reconstruction processes should be optimized, it is possible to extract quantitative information from the transmission rate and scattering of the protons. This suggests that proton imaging could provide additional knowledge on the materials that may be of use to further improve treatment planning.
机译:为了提高带电粒子疗法治疗计划的准确性,开发了质子成像。可以使用质子能量损失信息直接绘制材料的相对阻止能力。为了在重建的图像中达到令人满意的空间分辨率,在患者的上游和下游记录每个粒子的位置和方向。作为单个质子检测的结果,可以获得有关质子的传输速率和散射的信息。提出了图像重建过程以利用该信息。模拟了拟人头部模型的质子层析成像。粒子的透射率被用于重建材料的核相互作用的宏观横截面图。实施了两步迭代重建过程,以利用质子的散射来重建材料的反向散射长度图。结果表明,虽然应该优化重建过程,但有可能从质子的传输速率和散射中提取定量信息。这表明质子成像可以提供有关材料的更多知识,这些信息可能会用于进一步改善治疗计划。

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