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本文引用的文献

1
Optical-CT gel-dosimetry. II: Optical artifacts and geometrical distortion.光学CT凝胶剂量测定法。II:光学伪影与几何畸变。
Med Phys. 2004 May;31(5):1093-104. doi: 10.1118/1.1655710.
2
Evaluation of a 2D diode array for IMRT quality assurance.用于调强放射治疗质量保证的二维二极管阵列的评估
Radiother Oncol. 2004 Feb;70(2):199-206. doi: 10.1016/j.radonc.2003.10.014.
3
Optical-CT gel-dosimetry I: basic investigations.光学CT凝胶剂量测定法I:基础研究
Med Phys. 2003 Apr;30(4):623-34. doi: 10.1118/1.1559835.
4
High resolution gel-dosimetry by optical-CT and MR scanning.通过光学计算机断层扫描和磁共振扫描进行高分辨率凝胶剂量测定法
Med Phys. 2001 Jul;28(7):1436-45. doi: 10.1118/1.1380430.
5
Radiation dosimetry using polymer gels: methods and applications.使用聚合物凝胶的辐射剂量测定法:方法与应用
Br J Radiol. 2000 Sep;73(873):919-29. doi: 10.1259/bjr.73.873.11064643.
6
Optical CT reconstruction of 3D dose distributions using the ferrous-benzoic-xylenol (FBX) gel dosimeter.使用亚铁-苯甲酸-二甲苯酚(FBX)凝胶剂量计对三维剂量分布进行光学CT重建。
Med Phys. 1998 Sep;25(9):1741-50. doi: 10.1118/1.598356.
7
Experimental procedure for the manufacture and calibration of polyacrylamide gel (PAG) for magnetic resonance imaging (MRI) radiation dosimetry.用于磁共振成像(MRI)辐射剂量测定的聚丙烯酰胺凝胶(PAG)制造与校准的实验程序。
Phys Med Biol. 1998 Mar;43(3):695-702. doi: 10.1088/0031-9155/43/3/019.
8
Radiation dose distributions in three dimensions from tomographic optical density scanning of polymer gels: I. Development of an optical scanner.基于聚合物凝胶断层光学密度扫描的三维辐射剂量分布:I. 光学扫描仪的开发
Phys Med Biol. 1996 Dec;41(12):2695-704. doi: 10.1088/0031-9155/41/12/009.

复杂三维剂量分布的光学计算机断层扫描成像

Optical-CT imaging of complex 3D dose distributions.

作者信息

Oldham Mark, Kim Leonard, Hugo Geoffrey

出版信息

J Phys Conf Ser. 2005 Apr;5745:138-146. doi: 10.1117/12.595525.

DOI:10.1117/12.595525
PMID:17235366
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1773258/
Abstract

The limitations of conventional dosimeters restrict the comprehensiveness of verification that can be performed for advanced radiation treatments presenting an immediate and substantial problem for clinics attempting to implement these techniques. In essence, the rapid advances in the technology of radiation delivery have not been paralleled by corresponding advances in the ability to verify these treatments. Optical-CT gel-dosimetry is a relatively new technique with potential to address this imbalance by providing high resolution 3D dose maps in polymer and radiochromic gel dosimeters. We have constructed a 1(st) generation optical-CT scanner capable of high resolution 3D dosimetry and applied it to a number of simple and increasingly complex dose distributions including intensity-modulated-radiation-therapy (IMRT). Prior to application to IMRT, the robustness of optical-CT gel dosimetry was investigated on geometry and variable attenuation phantoms. Physical techniques and image processing methods were developed to minimize deleterious effects of refraction, reflection, and scattered laser light. Here we present results of investigations into achieving accurate high-resolution 3D dosimetry with optical-CT, and show clinical examples of 3D IMRT dosimetry verification. In conclusion, optical-CT gel dosimetry can provide high resolution 3D dose maps that greatly facilitate comprehensive verification of complex 3D radiation treatments. Good agreement was observed at high dose levels (>50%) between planned and measured dose distributions. Some systematic discrepancies were observed however (rms discrepancy 3% at high dose levels) indicating further work is required to eliminate confounding factors presently compromising the accuracy of optical-CT 3D gel-dosimetry.

摘要

传统剂量仪的局限性限制了对先进放射治疗进行全面验证的能力,这给试图实施这些技术的临床机构带来了直接且严重的问题。从本质上讲,放射治疗技术的快速发展并未伴随着相应的治疗验证能力的提升。光学CT凝胶剂量测定法是一种相对较新的技术,它有潜力通过在聚合物和放射变色凝胶剂量仪中提供高分辨率三维剂量图来解决这种不平衡。我们构建了一台能够进行高分辨率三维剂量测定的第一代光学CT扫描仪,并将其应用于一些简单且日益复杂的剂量分布,包括调强放射治疗(IMRT)。在将其应用于IMRT之前,我们在几何形状和可变衰减体模上研究了光学CT凝胶剂量测定法的稳健性。我们开发了物理技术和图像处理方法,以尽量减少折射、反射和散射激光的有害影响。在此,我们展示了利用光学CT实现精确高分辨率三维剂量测定的研究结果,并展示了三维IMRT剂量测定验证的临床实例。总之,光学CT凝胶剂量测定法可以提供高分辨率三维剂量图,极大地促进了对复杂三维放射治疗的全面验证。在高剂量水平(>50%)下,计划剂量分布和测量剂量分布之间观察到了良好的一致性,但也观察到了一些系统差异(高剂量水平下均方根差异为3%),这表明需要进一步开展工作来消除目前影响光学CT三维凝胶剂量测定准确性的混杂因素。