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首页> 外文期刊>Physics in medicine and biology. >Intra-fraction motion prediction in MRI-guided radiation therapy using Markov processes
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Intra-fraction motion prediction in MRI-guided radiation therapy using Markov processes

机译:利用Markov工艺的MRI引导放射治疗中的分数内运动预测

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Internal organ motion during radiation delivery may lead to underdosing of cancer cells or overdosing of normal tissue, potentially causing treatment failure or normal-tissue toxicity. Organ motion is of particular concern in the treatment of lung and abdominal cancers, where breathing induces large tumor displacement and organ deformation. A new generation of radiotherapy devices is equipped with on-board MRI scanners to acquire a real-time movie of the patient's anatomy during radiation delivery. The goal of this research is to develop, calibrate, and test motion predictive models that employ real-time MRI images to provide the short-term trajectory of respiration-induced anatomical motion during radiation delivery. A semi-Markov model predicts transitions between the phases of a respiratory cycle, and a Markov model predicts transitions to future respiratory cycles, leading to accurate motion forecasting over longer-term horizons. The intended application for this work is real-time tracking and re-optimization of intensity-modulated radiation delivery.
机译:辐射递送期间的内器运动可能导致癌细胞失效或过量正常组织,可能导致治疗失败或正常组织毒性。器官运动在治疗肺癌和腹部癌症时特别关注,其中呼吸诱导大肿瘤位移和器官变形。新一代放射疗法设备配备了板载MRI扫描仪,以在辐射递送期间获取患者解剖学的实时电影。该研究的目标是开发,校准和测试采用实时MRI图像的运动预测模型,以在辐射输送期间提供呼吸诱导的解剖运动的短期轨迹。半马尔可夫模型预测呼吸周期的阶段之间的转变,并且马尔可夫模型预测对未来呼吸周期的转变,从而准确地预测长期视野。本作作品的预期应用是强度调制辐射递送的实时跟踪和重新优化。

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