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Intuitive navigation in the targeting of radiation therapy treatment beams.

机译:瞄准放射治疗束的直观导航。

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摘要

This research focused on the possible benefits to be gained from using the intuitive navigation made possible by head-mounted displays (HMDs) in the targeting of radiation therapy treatment beams. A tumor surrounded by various types of healthy tissue can present a very complex 3-D situation which must be thoroughly understood for effective treatment to be possible. Conventional 2-D treatment planning suffers from reliance on 2-D diagnostic imaging and dose computations to represent an inherently 3-D problem. Current state-of-the-art treatment planning systems use 3-D models of the patient and compute 3-D dose distributions, but complete exploration of the solution space of possible beam orientations can be hindered by not-so-intuitive navigation controls. The thesis of this dissertation was that the head-mounted display will permit freer exploration of the patient anatomy and range of possible beam orientations, thereby resulting in more efficient treatment planning.; To that end, I developed a new, intuitive navigation mode, which used the orientation of a HMD to determine the direction from which its wearer viewed a 3-D model of the patient's anatomy. When the user looked down, he viewed the anatomy from above. Looking up yielded a view from below, and turning his head horizontally in a circle completely scanned around the model. Although it did not have a real-world metaphor, this mode (dubbed Orbital mode) proved to be surprisingly easy to use and well-suited to the task of targeting treatment beams. I compared Orbital mode with more conventional joystick-based rotation in a user study in which radiation oncology professionals designed treatment beam configurations for lung tumor cases. Slightly faster performance was found with Orbital mode, although there appeared to be no significant difference in the quality of the beam configurations. Movement in Orbital mode was more omnidirectional than with the joystick, most likely due to the mechanical construction of the joystick, which preferentially encouraged left-right and forward-back deflection. The overall conclusion from this study was that HMDs in their present state are not appropriate for clinical use, but with future developments in HMD technology, the benefits of intuitive navigation may appear in mainstream radiation treatment planning.
机译:这项研究的重点是通过使用头戴式显示器(HMD)在瞄准放射治疗束时可以使用的直观导航来获得可能的收益。被各种类型的健康组织包围的肿瘤可能会呈现非常复杂的3-D状况,必须对其进行全面了解才能有效治疗。传统的2-D治疗计划依赖于2-D诊断成像和剂量计算来代表固有的3-D问题。当前最先进的治疗计划系统使用患者的3-D模型并计算3-D剂量分布,但是不太直观的导航控件可能会妨碍对可能的射线方向的解决方案空间的全面探索。本论文的主题是,头戴式显示器将允许更自由地探查患者的解剖结构和可能的射线方向范围,从而导致更有效的治疗计划。为此,我开发了一种新的直观导航模式,该模式使用HMD的方向来确定佩戴者观看患者解剖结构的3D模型的方向。当用户向下看时,他从上方查看了解剖结构。抬起头来从下面看去,然后将头水平旋转一圈,完全围绕模型进行了扫描。尽管没有真实世界的隐喻,但这种模式(称为轨道模式)被证明非常易于使用,并且非常适合瞄准治疗束的任务。我在一项用户研究中将轨道模式与更传统的基于操纵杆的旋转进行了比较,在该研究中,放射肿瘤学专业人士为肺部肿瘤病例设计了治疗束配置。尽管在波束配置的质量上似乎没有显着差异,但使用轨道模式时发现性能略快。轨道模式下的运动比操纵杆更全向,这很可能是由于操纵杆的机械结构所致,它优先鼓励左右和前后偏转。这项研究的总体结论是,HMD目前不适合临床使用,但是随着HMD技术的未来发展,直观导航的好处可能会出现在主流放射治疗计划中。

著录项

  • 作者

    Chung, James Che-Ming.;

  • 作者单位

    The University of North Carolina at Chapel Hill.;

  • 授予单位 The University of North Carolina at Chapel Hill.;
  • 学科 Computer Science.
  • 学位 Ph.D.
  • 年度 1993
  • 页码 261 p.
  • 总页数 261
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 自动化技术、计算机技术;
  • 关键词

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