首页> 外文期刊>Physics in medicine and biology. >A new optimization method using a compressed sensing inspired solver for real-time LDR-brachytherapy treatment planning.
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A new optimization method using a compressed sensing inspired solver for real-time LDR-brachytherapy treatment planning.

机译:一种新的优化方法,使用压缩感测启发式求解器进行实时LDR近距离放射治疗计划。

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This work discusses a novel strategy for inverse planning in low dose rate brachytherapy. It applies the idea of compressed sensing to the problem of inverse treatment planning and a new solver for this formulation is developed. An inverse planning algorithm was developed incorporating brachytherapy dose calculation methods as recommended by AAPM TG-43. For optimization of the functional a new variant of a matching pursuit type solver is presented. The results are compared with current state-of-the-art inverse treatment planning algorithms by means of real prostate cancer patient data. The novel strategy outperforms the best state-of-the-art methods in speed, while achieving comparable quality. It is able to find solutions with comparable values for the objective function and it achieves these results within a few microseconds, being up to 542 times faster than competing state-of-the-art strategies, allowing real-time treatment planning. The sparse solution of inverse brachytherapy planning achieved with methods from compressed sensing is a new paradigm for optimization in medical physics. Through the sparsity of required needles and seeds identified by this method, the cost of intervention may be reduced.
机译:这项工作讨论了低剂量率近距离放射治疗中逆向计划的新策略。它将压缩感测的思想应用于逆向治疗计划问题,并为此公式开发了新的求解器。根据AAPM TG-43的建议,开发了一种结合近距离放射治疗剂量计算方法的逆计划算法。为了优化功能,提出了匹配追踪类型求解器的新变体。通过真实的前列腺癌患者数据,将结果与当前最新的反向治疗计划算法进行比较。这种新颖的策略在速度上胜过最好的最新技术,同时还具有可比的质量。它能够为目标函数找到具有可比值的解决方案,并且可以在几微秒内达到这些结果,比竞争的最新技术快542倍,从而可以进行实时治疗计划。利用压缩感测方法实现的近距离放射治疗计划的稀疏解决方案是医学物理优化的新范例。通过此方法识别的所需针叶和种子的稀疏性,可以降低干预成本。

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