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TOPOS:一种基于结构光的新型放射治疗体部定位与跟踪系统。

TOPOS: a new topometric patient positioning and tracking system for radiation therapy based on structured white light.

机构信息

Strahlenklinik, Universitätsklinikum Erlangen, Universitätstrasse 27, 91054 Erlangen, Germany.

出版信息

Med Phys. 2013 Apr;40(4):042701. doi: 10.1118/1.4794927.

Abstract

PURPOSE

A patient positioning system for radiation therapy based on structured white light and using off-the-shelf hardware components for flexibility and cost-effectiveness has been developed in house. Increased accuracy, patient comfort, abandonment of any skin marks, accelerated workflow, objective reading/recording, better usability and robust sensor design, compared to other positioning approaches, were the main goals of this work. Another aim was the application of a 6 degrees of freedom tracking system working without dose deposition.

METHODS

Two optical sensors are the main parts of the TOPOS® system (Topometrical Positioning, cyberTECHNOLOGIES, Germany). The components: cameras, projectors, and computers are commercial off-the-shelf products, allowing for low production costs. The black/white cameras of the prototype are capable of taking up to 240 frames per second (resolution: 640 × 488 pixels). The projector has a resolution of 1024 × 768 and a refresh rate of 120 Hz. The patient's body surface is measured continuously and registered to a reference surface, providing a transformation to superimpose the patient's surface to the reference (planning CT) surface as best as possible. The execution of the calculated transformation provides the correct patient position before the treatment starts. Due to the high-speed acquisition of the surfaces, a surveillance of the patient's (respiration) motion during treatment is also accomplished. The accuracy of the system was determined using a male mannequin. Two treatment sites were evaluated: one simulating a head and neck treatment and the other simulating a thoracic wall treatment. The mannequin was moved to predefined positions, and shift vectors given by the surface registration were evaluated. Additionally manual positioning using a color-coding system was evaluated.

RESULTS

Two prototypes have been developed, each allowing a continuous high density scan of a 500 × 500 × 400 mm(3) (L × W × D) large volume with a refresh rate of 10 Hz (extendible to 20 Hz for a single sensor system). Surface and position correction display, as well as respiratory motion, is shown in real-time (delay < 200 ms) using present graphical hardware acceleration. For an intuitive view of the patient's misalignment, a fast surface registration algorithm has been developed and tested and a real-time color-coding technique is proposed and verified that allows the user to easily verify the position of the patient. Using first the surface registration and then the color coding the best results were obtained: for the head and neck case, the mean difference between the actual zero position and the final match was 0.1 ± 0.4, -0.2 ± 0.7, and -0.1 ± 0.3 mm in vertical, longitudinal, and lateral direction. For the thoracic case, the mean differences were 0.3 ± 0.5, -0.6 ± 1.9, 0.0 ± 0.4 mm.

CONCLUSIONS

The presented system copes with the increasing demand for more accurate patient positioning due to more precise irradiation technologies and minimizes the preparation times for correct patient alignment, therefore optimizing the treatment workflow. Moreover, TOPOS is a versatile and cost effective image guided radiation therapy device. It allows an objective rating of the patient's position before and during the irradiation and could also be used for respiratory gating or tracking.

摘要

目的

我们自主研发了一种基于结构白光的放射治疗患者定位系统,使用现成的硬件组件以实现灵活性和高性价比。与其他定位方法相比,该系统具有更高的准确性、患者舒适度、无需皮肤标记、加速工作流程、客观的读取/记录、更好的可用性和稳健的传感器设计等优势。该系统的另一个目标是应用无需剂量沉积的六自由度跟踪系统。

方法

TOPOS®系统(Topometrical Positioning,cyberTECHNOLOGIES,德国)的主要部分由两个光学传感器组成。组件:摄像机、投影仪和计算机都是商用现货产品,可降低生产成本。原型的黑白摄像机每秒可拍摄多达 240 帧(分辨率:640×488 像素)。投影仪的分辨率为 1024×768,刷新率为 120Hz。患者的体表面被连续测量并注册到参考表面,提供一种将患者的表面尽可能地与参考(计划 CT)表面叠加的变换。在治疗开始前执行计算变换可提供正确的患者位置。由于表面的高速采集,还可以在治疗过程中监测患者的运动。该系统的准确性使用男性人体模型确定。评估了两个治疗部位:一个模拟头颈部治疗,另一个模拟胸壁治疗。将人体模型移动到预定义位置,并评估表面注册给出的移位矢量。此外,还评估了使用颜色编码系统的手动定位。

结果

开发了两个原型,每个原型都允许以 500×500×400mm³(L×W×D)的大体积进行连续高密度扫描,刷新频率为 10Hz(对于单个传感器系统可扩展至 20Hz)。使用当前的图形硬件加速,实时显示表面和位置校正显示以及呼吸运动(延迟<200ms)。为了直观地观察患者的错位情况,开发并测试了一种快速表面配准算法,并提出并验证了一种实时颜色编码技术,允许用户轻松验证患者的位置。首先使用表面配准,然后使用颜色编码,可获得最佳结果:对头颈部病例,实际零位与最终匹配之间的平均差值分别为 0.1±0.4、-0.2±0.7 和-0.1±0.3mm (垂直、纵向和横向)。对于胸部病例,平均差值分别为 0.3±0.5、-0.6±1.9 和 0.0±0.4mm。

结论

所提出的系统满足了由于更精确的照射技术而对更精确的患者定位的需求,并且最大限度地减少了正确对准患者所需的准备时间,从而优化了治疗流程。此外,TOPOS 是一种多功能且经济高效的图像引导放射治疗设备。它允许在照射前后对患者的位置进行客观评估,并且还可用于呼吸门控或跟踪。

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