首页> 外文期刊>Radiotherapy and oncology: Journal of the European Society for Therapeutic Radiology and Oncology >Monte Carlo simulation of a realistic anatomical phantom described by triangle meshes: application to prostate brachytherapy imaging.
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Monte Carlo simulation of a realistic anatomical phantom described by triangle meshes: application to prostate brachytherapy imaging.

机译:蒙特卡洛模拟的三角形网格描述的现实解剖模型:在前列腺近距离放射治疗成像中的应用。

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PURPOSE: Monte Carlo codes can simulate the transport of radiation within matter with high accuracy and can be used to study medical applications of ionising radiations. The aim of our work was to develop a Monte Carlo code capable of generating projection images of the human body. In order to obtain clinically realistic images a detailed anthropomorphic phantom was prepared. These two simulation tools are intended to study the multiple applications of imaging in radiotherapy, from image guided treatments to portal imaging. METHODS: We adapted the general-purpose code PENELOPE 2006 to simulate a radiation source, an ideal digital detector, and a realistic model of the patient anatomy. The anthropomorphic phantom was developed using computer-aided design tools, and is based on the NCAT phantom. The surface of each organ is modelled using a closed triangle mesh, and the full phantom contains 330 organs and more than 5 million triangles. A novel object-oriented geometry package, which includes an octree structure to sort the triangles, has been developed to use this complex geometry with PENELOPE. RESULTS: As an example of the capabilities of the new code, projection images of the human pelvis region were simulated. Radioactive seeds were included inside the phantom's prostate. Therefore, the resulting simulated images resemble what would be obtained in a clinical procedure to assess the positioning of the seeds in a prostate brachytherapy treatment. CONCLUSIONS: The new code can produce projection images of the human body that are comparable to those obtained by a real imaging system (within the limitations of the anatomical phantom and the detector model). The simulated images can be used to study and optimise an imaging task (i.e., maximise the object detectability, minimise the delivered dose, find the optimum beam energy, etc.). Since PENELOPE can simulate radiation from 50 eV to 1 GeV, the code can also be used to simulate radiotherapy treatments and portal imaging. Using the octree data structure, thenew geometry model does not significantly increase the computing time when compared to the simulation of a much simpler quadric geometry. In conclusion, we have shown that it is feasible to use PENELOPE and a complex triangle mesh geometry to simulate real medical physics applications.
机译:目的:蒙特卡洛代码可以高精度地模拟物质内部的辐射传输,并且可以用于研究电离辐射的医学应用。我们工作的目的是开发一种能够生成人体投影图像的蒙特卡洛代码。为了获得临床逼真的图像,准备了详细的拟人化体模。这两个模拟工具旨在研究影像在放射治疗中的多种应用,从影像引导治疗到门静脉成像。方法:我们改编了通用代码PENELOPE 2006,以模拟放射源,理想的数字检测器和患者解剖结构的真实模型。拟人体模是使用计算机辅助设计工具开发的,并且基于NCAT体模。每个器官的表面都使用封闭的三角形网格进行建模,整个幻像包含330个器官和超过500万个三角形。已经开发出一种新颖的面向对象的几何图形包,其中包括使用八叉树结构对三角形进行排序,以将这种复杂的几何图形与PENELOPE一起使用。结果:作为新代码功能的一个示例,模拟了人类骨盆区域的投影图像。放射性种子包括在体模的前列腺内。因此,所得到的模拟图像类似于在临床程序中获得的,以评估种子在前列腺近距离放射治疗中的位置。结论:新代码可以产生与真实成像系统可比的人体投影图像(在解剖体模和探测器模型的限制内)。模拟的图像可用于研究和优化成像任务(即,最大化对象可检测性,最小化输送剂量,找到最佳光束能量等)。由于PENELOPE可以模拟从50 eV到1 GeV的辐射,因此该代码也可以用于模拟放射治疗和门脉成像。使用八叉树数据结构,与模拟更简单的二次几何相比,新的几何模型不会显着增加计算时间。总之,我们已经表明,使用PENELOPE和复杂的三角形网格几何体来模拟实际的医学物理应用是可行的。

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