Mosleh-Shirazi M A, Evans P M, Swindell W, Symonds-Tayler J R, Webb S, Partridge M
Joint Department of Physics, Institute of Cancer Research and Royal Marsden NHS Trust, Sutton, Surrey, United Kingdom.
Med Phys. 1998 Dec;25(12):2333-46. doi: 10.1118/1.598443.
The design, construction, and performance evaluation of an electronic portal imaging device (EPID) are described. The EPID has the same imaging geometry as the current mirror-based systems except for the x-ray detection stage, where a two-dimensional (2D) array of 1 cm thick CsI(Tl) detector elements are utilized. The approximately 18% x-ray quantum efficiency of the scintillation detector and its 30 x 40 cm2 field-of-view at the isocenter are greater than other area-imaging EPIDs. The imaging issues addressed are theoretical and measured signal-to-noise ratio, linearity of the imaging chain, influence of frame-summing on image quality and image calibration. Portal images of test objects and a humanoid phantom are used to measure the performance of the system. An image quality similar to the current devices is achieved but with a lower dose. With approximately 1 cGy dose delivered by a 6 MV beam, a 2 mm diam structure of 1.3% contrast and an 18 mm diam object of 0.125% contrast can be resolved without using image-enhancement methods. A spatial resolution of about 2 mm at the isocenter is demonstrated. The capability of the system to perform fast sequential imaging, synchronized with the radiation pulses, makes it suitable for patient motion studies and verification of intensity-modulated beams as well as its application in cone-beam megavoltage computed tomography.
本文描述了一种电子射野成像装置(EPID)的设计、构造及性能评估。除了X射线检测阶段外,该EPID与当前基于镜像的系统具有相同的成像几何结构,在X射线检测阶段,使用了由厚度为1 cm的CsI(Tl)探测器元件组成的二维(2D)阵列。闪烁探测器约18%的X射线量子效率及其在等中心处30×40 cm2的视野大于其他面积成像EPID。所解决的成像问题包括理论和测量的信噪比、成像链的线性、帧求和对图像质量的影响以及图像校准。使用测试物体和人形模体的射野图像来测量系统的性能。该系统实现了与当前设备相似的图像质量,但剂量更低。在6 MV射束提供约1 cGy剂量的情况下,无需使用图像增强方法即可分辨出对比度为1.3%的直径2 mm的结构和对比度为0.125%的直径18 mm的物体。在等中心处展示了约2 mm的空间分辨率。该系统能够与辐射脉冲同步进行快速序列成像,使其适用于患者运动研究、调强射束验证以及在锥束兆伏级计算机断层扫描中的应用。