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小射野:非平衡辐射剂量学

Small fields: nonequilibrium radiation dosimetry.

作者信息

Das Indra J, Ding George X, Ahnesjö Anders

机构信息

Department of Radiation Oncology, University of Pennsylvania, Philadelphia, Pennsylvania 19104, USA.

出版信息

Med Phys. 2008 Jan;35(1):206-15. doi: 10.1118/1.2815356.

Abstract

Advances in radiation treatment with beamlet-based intensity modulation, image-guided radiation therapy, and stereotactic radiosurgery (including specialized equipments like CyberKnife, Gamma Knife, tomotherapy, and high-resolution multileaf collimating systems) have resulted in the use of reduced treatment fields to a subcentimeter scale. Compared to the traditional radiotherapy with fields > or =4 x 4 cm2, this can result in significant uncertainty in the accuracy of clinical dosimetry. The dosimetry of small fields is challenging due to nonequilibrium conditions created as a consequence of the secondary electron track lengths and the source size projected through the collimating system that are comparable to the treatment field size. It is further complicated by the prolonged electron tracks in the presence of low-density inhomogeneities. Also, radiation detectors introduced into such fields usually perturb the level of disequilibrium. Hence, the dosimetric accuracy previously achieved for standard radiotherapy applications is at risk for both absolute and relative dose determination. This article summarizes the present knowledge and gives an insight into the future procedures to handle the nonequilibrium radiation dosimetry problems. It is anticipated that new miniature detectors with controlled perturbations and corrections will be available to meet the demand for accurate measurements. It is also expected that the Monte Carlo techniques will increasingly be used in assessing the accuracy, verification, and calculation of dose, and will aid perturbation calculations of detectors used in small and highly conformal radiation beams. rican Association of Physicists in Medicine.

摘要

基于子野的调强放疗、图像引导放射治疗和立体定向放射外科(包括如射波刀、伽玛刀、断层放疗和高分辨率多叶准直系统等专业设备)的进展,已使得治疗野缩小至亚厘米尺度。与传统放疗中治疗野≥4×4平方厘米相比,这可能导致临床剂量测定精度出现显著不确定性。小射野的剂量测定具有挑战性,这是由于二次电子径迹长度以及通过准直系统投射的源尺寸与治疗野大小相当,从而产生了非平衡条件。在存在低密度不均匀性的情况下,电子径迹延长会使情况进一步复杂化。此外,引入此类射野的辐射探测器通常会干扰非平衡水平。因此,先前在标准放疗应用中实现的剂量测定精度在绝对剂量和相对剂量测定方面都面临风险。本文总结了当前的知识,并深入探讨了处理非平衡辐射剂量测定问题的未来方法。预计将有具有可控扰动和校正功能的新型微型探测器问世,以满足精确测量的需求。还预计蒙特卡罗技术将越来越多地用于评估剂量的准确性、验证和计算,并有助于对用于小射野和高度适形辐射束的探测器进行扰动计算。美国医学物理学家协会。

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