Extension of the open-source TIGRE toolbox for proton imaging

IF 2.4 4区 医学 Q2 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING Zeitschrift fur Medizinische Physik Pub Date : 2023-11-01 DOI:10.1016/j.zemedi.2022.08.005
Stefanie Kaser , Thomas Bergauer , Ander Biguri , Wolfgang Birkfellner , Sepideh Hatamikia , Albert Hirtl , Christian Irmler , Benjamin Kirchmayer , Felix Ulrich-Pur
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Abstract

Proton irradiation is a well-established method to treat deep-seated tumors in radio oncology. Usually, an X-ray computed tomography (CT) scan is used for treatment planning. Since proton therapy is based on the precise knowledge of the stopping power describing the energy loss of protons in the patient tissues, the Hounsfield units of the planning CT have to be converted. This conversion introduces range errors in the treatment plan, which could be reduced, if the stopping power values were extracted directly from an image obtained using protons instead of X-rays. Since protons are affected by multiple Coulomb scattering, reconstruction of the 3D stopping power map results in limited image quality if the curved proton path is not considered. This work presents a substantial code extension of the open-source toolbox TIGRE for proton CT (pCT) image reconstruction based on proton radiographs including a curved proton path estimate. The code extension and the reconstruction algorithms are GPU-based, allowing to achieve reconstruction results within minutes. The performance of the pCT code extension was tested with Monte Carlo simulated data using three phantoms (Catphan® high resolution and sensitometry modules and a CIRS patient phantom). In the simulations, ideal and non-ideal conditions for a pCT setup were assumed. The obtained mean absolute percentage error was found to be below 1% and up to 8 lp/cm could be resolved using an idealized setup. These findings demonstrate that the presented code extension to the TIGRE toolbox offers the possibility for other research groups to use a fast and accurate open-source pCT reconstruction.

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为质子成像扩展开源 TIGRE 工具箱
质子照射是放射肿瘤学中治疗深部肿瘤的一种行之有效的方法。通常使用 X 射线计算机断层扫描(CT)来制定治疗计划。由于质子治疗是基于描述质子在患者组织中能量损耗的停止功率的精确知识,因此必须对计划 CT 的 Hounsfield 单位进行转换。如果直接从使用质子而不是 X 射线获得的图像中提取停止功率值,就可以减少治疗计划中的范围误差。由于质子受到多重库仑散射的影响,如果不考虑质子的弯曲路径,重建三维停止功率图会导致图像质量受限。本研究对开源工具箱 TIGRE 进行了大量代码扩展,用于基于质子射线照片的质子 CT(pCT)图像重建,包括弯曲质子路径估计。代码扩展和重建算法基于 GPU,可在几分钟内获得重建结果。使用三个模型(Catphan® 高分辨率和敏感度测量模块以及 CIRS 患者模型)的蒙特卡罗模拟数据对 pCT 代码扩展的性能进行了测试。在模拟中,假定了 pCT 设置的理想和非理想条件。结果发现,获得的平均绝对百分比误差低于 1%,使用理想化设置可分辨出高达 8 lp/cm。这些发现表明,TIGRE 工具箱的代码扩展为其他研究小组提供了使用快速、准确的开源 pCT 重建的可能性。
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来源期刊
CiteScore
3.70
自引率
10.00%
发文量
69
审稿时长
65 days
期刊介绍: Zeitschrift fur Medizinische Physik (Journal of Medical Physics) is an official organ of the German and Austrian Society of Medical Physic and the Swiss Society of Radiobiology and Medical Physics.The Journal is a platform for basic research and practical applications of physical procedures in medical diagnostics and therapy. The articles are reviewed following international standards of peer reviewing. Focuses of the articles are: -Biophysical methods in radiation therapy and nuclear medicine -Dosimetry and radiation protection -Radiological diagnostics and quality assurance -Modern imaging techniques, such as computed tomography, magnetic resonance imaging, positron emission tomography -Ultrasonography diagnostics, application of laser and UV rays -Electronic processing of biosignals -Artificial intelligence and machine learning in medical physics In the Journal, the latest scientific insights find their expression in the form of original articles, reviews, technical communications, and information for the clinical practice.
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