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Subsequence based treatment failure detection and intervention in image guided radiotherapy

机译:基于后续的治疗失败检测与图像引导放射疗法的干预

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Respiratory motion induces discrepancy between the expected tumor positions used in treatment planning and the actual positions during treatment delivery. Such motion degrades greatly the effectiveness of the radiation treatment. To address this challenge, we have proposed an online treatment failure detection approach with image guidance. Tumor motion is tracked in real-time during treatment delivery and compared to the baseline motion used in treatment planning. Tracking errors are recovered online with subdivided subsequence correlation. A stop-n-wait dose delivery procedure is applied to minimize treatment errors. Two approaches have been developed to address baseline shift in tumor motion. The performances are evaluated using three different metrics: the misplacement of the tumor, the treatment efficacy, and the intervention frequency. The results showed that the new approaches will reduce treatment errors, improve dose delivery efficiency, and reduce treatment interventions. This study has the potential to be employed in clinical practice thus improving radiation outcome.
机译:呼吸运动会在治疗计划中使用的预期肿瘤位置与治疗递送期间的实际位置之间产生差异。这种运动大大降解了辐射处理的有效性。为了解决这一挑战,我们提出了一种具有图像指导的在线治疗失败检测方法。在治疗递送期间实时跟踪肿瘤运动,并与治疗计划中使用的基线运动进行比较。跟踪错误在线在线恢复,随后关联相关。施加止渗D剂量递送程序以最小化治疗误差。已经开发出两种方法来解决肿瘤运动中的基线变化。使用三种不同的度量评估性能:肿瘤的错位,治疗效率和干预频率。结果表明,新方法将减少治疗误差,提高剂量输送效率,降低治疗干预。该研究有可能在临床实践中使用,从而改善辐射结果。

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