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首页> 外文期刊>Medical Physics >Optimization of radiosurgery treatment planning via mixed integer programming.
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Optimization of radiosurgery treatment planning via mixed integer programming.

机译:通过混合整数编程优化放射外科治疗计划。

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摘要

An automated optimization algorithm based on mixed integer programming techniques is presented for generating high-quality treatment plans for LINAC radiosurgery treatment. The physical planning in radiosurgery treatment involves selecting among a large collection of beams with different physical parameters an optimal beam configuration (geometries and intensities) to deliver the clinically prescribed radiation dose to the tumor volume while sparing the nearby critical structure and normal tissue. The proposed mixed integer programming models incorporate strict dose restrictions on tumor volume, and constraints on the desired number of beams, isocenters, couch angles, and gantry angles. The model seeks to deliver full prescription dose coverage and uniform radiation dose to the tumor volume while minimizing the excess radiation to the periphery normal tissue. In particular, it ensures that proximal normal tissues receive minimal dose via rapid dose fall-off. Preliminary numerical tests on a single patient case indicate that this approach can produce exceptionally high-quality plans in a fraction of the time required using the procedure currently employed by clinicians. The resulting plans provide highly uniform prescription dose to the tumor volume while drastically reducing the irradiation received by the proximal critical normal tissue.
机译:提出了一种基于混合整数编程技术的自动优化算法,以生成用于LINAC放射外科治疗的高质量治疗计划。放射外科治疗中的物理规划包括在具有不同物理参数的大量光束中选择最佳的光束配置(几何形状和强度),以将临床规定的放射剂量输送到肿瘤体积,同时保留附近的关键结构和正常组织。提出的混合整数规划模型对肿瘤体积具有严格的剂量限制,并对所需的束数,等角点,床角和台架角具有约束。该模型旨在为肿瘤体积提供完整的处方剂量覆盖范围和统一的辐射剂量,同时将对周围正常组织的多余辐射降至最低。特别是,它可确保近端正常组织通过快速剂量下降而获得最小剂量。对单个患者病例进行的初步数值测试表明,使用临床医生目前采用的程序,此方法可以在所需时间的一小部分内生成非常高质量的计划。最终的计划为肿瘤体积提供了高度统一的处方剂量,同时大大减少了近端关键正常组织所接受的辐射。

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