首页> 外文会议>World congress on medical physics and biomedical engineering;International congress of the IUPESM >STATIONARY-GANTRY TOMOSYNTHESIS SYSTEM FOR ON-LINE IMAGE GUIDANCE IN RADIATION THERAPY BASED ON A 52-SOURCE COLD CATHODE X-RAY TUBE
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STATIONARY-GANTRY TOMOSYNTHESIS SYSTEM FOR ON-LINE IMAGE GUIDANCE IN RADIATION THERAPY BASED ON A 52-SOURCE COLD CATHODE X-RAY TUBE

机译:基于52源冷阴极X射线管的放射治疗在线图像引导的门架固定式断层合成系统

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We present the design and simulation of an imaging system that employs a compact multiple source x-ray tube to produce a tomosyn-thesis image from a set of projections obtained at a single tube position. The electron sources within the tube are realized using cold cathode carbon nanotube technology. The primary intended application is tomosynthesis-based 3D image guidance during external beam radiation therapy. The tube, which is attached to the gantry of a medical linear accelerator (linac) immediately below the mul-tileaf collimator, operates within the voltage range of 80-160 kVp and contains a total of 52 sources that are arranged in a rectilinear array. This configuration allows for the acquisition of tomographic projections from multiple angles without any need to rotate the linac gantry. The x-ray images are captured by the same amorphous silicon flat panel detector employed for portal imaging on contempor-tary linacs. The field-of-view (FOV) of the system corresponds to that part of the volume that is sampled by rays from all sources. The present tube and detector configuration provides an 8 cm x 8 cm FOV in the plane of the linac isocenter when the 40.96 cm x 40.96 cm imaging detector is placed 40 cm from the isocenter. Since this to-mosynthesis application utilizes the extremities of the detector to record image detail relating to structures near the isocenter, simultaneous treatment and imaging is possible for most clinical cases, where the treated target is a small region close to the linac isocenter. The tomosynthesis images are reconstructed using the simultaneous iterative reconstruction technique (SART), which is accelerated using a graphics processing unit (GPU). We present details of the system design as well as simulated performance of the imaging system based on reprojections of patient CT images.
机译:我们介绍了一种成像系统的设计和仿真,该系统采用紧凑的多源X射线管从在单个管位置获得的一组投影生成断层合成图像。管内的电子源使用冷阴极碳纳米管技术实现。主要的预期应用是在外部束放射治疗期间基于断层合成的3D图像引导。该管紧接在多面体准直仪下方的医用线性加速器(直线加速器)的机架上,在80-160 kVp的电压范围内运行,并包含以直线阵列排列的总共52个光源。这种配置允许从多个角度获取断层摄影投影,而无需旋转直线加速器机架。 X射线图像由用于当代直线加速器上门成像的同一非晶硅平板检测器捕获。系统的视场(FOV)对应于体积的一部分,该部分由来自所有源的射线采样。当将40.96 cm x 40.96 cm成像检测器放置在距等中心点40 cm处时,本管和检测器配置可在直线加速器等中心点的平面内提供8 cm x 8 cm的视场。由于此镶嵌合成应用程序利用检测器的末端来记录与等中心附近的结构有关的图像细节,因此对于大多数临床情况(其中被治疗目标是靠近直线加速器等中心的小区域),可以同时进行治疗和成像。使用同时迭代重建技术(SART)重建断层合成图像,并使用图形处理单元(GPU)对其进行加速。我们介绍了系统设计的详细信息,以及基于患者CT图像的重新投影的成像系统的模拟性能。

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