快速点顺序优化,提高扫描粒子治疗的剂量率。

IF 3.3 3区 医学 Q2 ENGINEERING, BIOMEDICAL Physics in medicine and biology Pub Date : 2025-01-20 DOI:10.1088/1361-6560/ada715
Viktor Wase, Oscar Widenfalk, Rasmus Nilsson, Claes Fälth, Albin Fredriksson
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引用次数: 0

摘要

超高剂量率辐照的出现,被称为FLASH放射治疗,在降低毒性的同时保持肿瘤控制方面显示出良好的潜力。然而,这些益处的临床转化需要有效的治疗计划策略。本研究提出一种利用旅行推销员问题(TSP)启发式优化质子治疗FLASH效果的新方法。我们应用这些启发式算法对26例前列腺癌患者治疗方案中的质子点排列进行了优化,并与传统的排序方法和全局优化技术进行了比较。我们的研究结果表明,基于tsp的启发式方法显著提高了FLASH覆盖范围,其程度与全局优化技术相同,但计算时间从几个小时减少到几秒钟。这种方法为提高FLASH疗法的有效性提供了一种实用且可扩展的解决方案,为更有效和个性化的癌症治疗铺平了道路。未来的工作将集中在进一步优化运行时间和在临床环境中验证这些方法。
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Fast spot order optimization to increase dose rates in scanned particle therapy FLASH treatments.

The advent of ultra-high dose rate irradiation, known as FLASH radiation therapy, has shown promising potential in reducing toxicity while maintaining tumor control. However, the clinical translation of these benefits necessitates efficient treatment planning strategies. This study introduces a novel approach to optimize proton therapy for FLASH effects using traveling salesperson problem (TSP) heuristics. We applied these heuristics to optimize the arrangement of proton spots in treatment plans for 26 prostate cancer patients, comparing the performance against conventional sorting methods and global optimization techniques. Our results demonstrate that TSP-based heuristics significantly enhance FLASH coverage to the same extent as the global optimization technique, but with computation times reduced from hours to a few seconds. This approach offers a practical and scalable solution for enhancing the effectiveness of FLASH therapy, paving the way for more effective and personalized cancer treatments. Future work will focus on further optimizing run times and validating these methods in clinical settings.

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来源期刊
Physics in medicine and biology
Physics in medicine and biology 医学-工程:生物医学
CiteScore
6.50
自引率
14.30%
发文量
409
审稿时长
2 months
期刊介绍: The development and application of theoretical, computational and experimental physics to medicine, physiology and biology. Topics covered are: therapy physics (including ionizing and non-ionizing radiation); biomedical imaging (e.g. x-ray, magnetic resonance, ultrasound, optical and nuclear imaging); image-guided interventions; image reconstruction and analysis (including kinetic modelling); artificial intelligence in biomedical physics and analysis; nanoparticles in imaging and therapy; radiobiology; radiation protection and patient dose monitoring; radiation dosimetry
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