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Stochastic Local Search Algorithms for the Direct Aperture Optimisation Problem in IMRT

机译:IMRT直接孔径优化问题的随机局部搜索算法

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In this paper, two heuristic algorithms are proposed to solve the direct aperture optimisation problem (DAO) in radiation therapy for cancer treatment. In the DAO problem, the goal is to find a set of deliverable aperture shapes and intensities so we can irradiate the tumor according to a medical prescription without producing any harm to the surrounding healthy tissues. Unlike the traditional two-step approach used in intensity modulated radiation therapy (IMRT) where the intensities are computed and then the apertures shapes are determined by solving a sequencing problem, in the DAO problem, constraints associated to the number of deliverable aperture shapes as well as physical constraints are taken into account during the intensities optimisation process. Thus, we do not longer need any leaves sequencing procedure after solving the DAO problem. We try our heuristic algorithms on a prostate case and compare the obtained treatment plan to the one obtained using the traditional two-step approach. Results show that our algorithms are able to find treatment plans that are very competitive when considering the number of deliverable aperture shapes.
机译:本文提出了两种启发式算法来解决放射线治疗癌症中的直接孔径优化问题(DAO)。在DAO问题中,目标是找到一组可交付的光圈形状和强度,以便我们可以根据医学处方对肿瘤进行照射,而不会对周围的健康组织造成任何伤害。与用于强度调制放射治疗(IMRT)的传统两步法不同,在传统的两步法中,先计算强度然后通过解决排序问题来确定孔的形状,而在DAO问题中,还涉及与可交付的孔形状的数量相关的约束因为在强度优化过程中会考虑物理限制。因此,在解决DAO问题之后,我们不再需要任何叶子排序过程。我们在前列腺病例上尝试我们的启发式算法,并将获得的治疗计划与使用传统的两步法获得的治疗计划进行比较。结果表明,在考虑可交付的光圈形状数量时,我们的算法能够找到非常有竞争力的治疗计划。

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