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基于迭代更新模型的鼻咽癌自动计划质量研究
引用本文:王艺璇,朱金汉,张丹丹,邓小武,周凌宏. 基于迭代更新模型的鼻咽癌自动计划质量研究[J]. 中国医学物理学杂志, 2022, 0(2): 139-145. DOI: DOI:10.3969/j.issn.1005-202X.2022.02.002
作者姓名:王艺璇  朱金汉  张丹丹  邓小武  周凌宏
作者单位:1.南方医科大学生物医学工程学院, 广东 广州 510515; 2.中山大学肿瘤防治中心放疗科/华南肿瘤学国家实验室/肿瘤医学协同创新中心, 广东 广州 510060
基金项目:国家自然科学基金(12005315,11905303)。
摘    要:目的:以鼻咽癌调强计划作为对象,应用瓦里安eclipse治疗计划系统的Rapid Plan自动计划模块,建立一种新的迭代更新方法提高Rapid Plan模型的质量,并验证该方法在临床应用的可靠性。方法:本研究随机选取鼻咽癌患者计划117例,运用计划质量评估方法及RTOG protocol 0615报告来制定计划质量评估指标对其打分。通过打分筛选每次建模的入组计划,对被筛掉的低分计划利用每次迭代更新模型辅助重新设计,并逐步提高入组计划分数,最终经过3次迭代获得最终模型。另选取20例鼻咽癌测试病例验证模型每次迭代的变化以及进行最终模型与原手工计划的比较。结果:经3次迭代分别获得模型A1、A2、A3。随着模型迭代,分数呈上升趋势,最终模型A3评分与原计划相比差异有统计学意义(P<0.05)。3个模型靶区剂量覆盖均满足临床要求,PTVnx的V70 Gy,PTV1的V60 Gy,PTV2的V54 Gy均值差别没有超过1%。危及器官脊髓的Dmax

关 键 词:鼻咽癌  自动计划  模型迭代

Quality improvement of automatic planning for nasopharyngeal carcinoma by iteratively updating model
WANG Yixuan,ZHU Jinhan,ZHANG Dandan,DENG Xiaowu,ZHOU Linghong. Quality improvement of automatic planning for nasopharyngeal carcinoma by iteratively updating model[J]. Chinese Journal of Medical Physics, 2022, 0(2): 139-145. DOI: DOI:10.3969/j.issn.1005-202X.2022.02.002
Authors:WANG Yixuan  ZHU Jinhan  ZHANG Dandan  DENG Xiaowu  ZHOU Linghong
Affiliation:1. School of Biomedical Engineering, Southern Medical University, Guangzhou 510515, China 2. Department of Radiation Oncology, Sun Yat-sen University Cancer Center/State Key Laboratory of Oncology in South China/Collaborative Innovation Center for Cancer Medicine, Guangzhou 510060, China
Abstract:Objective To establish a new iteratively updating method for improving the quality of Varian eclipse Rapid Plan automatic planning model in radiotherapy planning for nasopharyngeal carcinoma(NPC),and to verify its reliability in clinical application.Methods The radiotherapy plans were randomly selected from 117 NPC patients,and the plan quality indexes were determined and scored using evaluation method and RTOG protocol 0615 report.The plans which were used for model training were screened by score threshold;and each iteratively updating model was used to assist the redesign of the low-score plans which were screened out.The score threshold was gradually improved by iterations,and the final model was obtained after 3 iterations.Another 20 NPC test cases were selected to verify the changes of the model after iteration,and the comparison between the final model and the original manual plan was carried out.Results The models A1,A2 and A3 were obtained by 3 iterations.With the iteration,the scores showed an upward trend,and the score of the final model A3 was significantly higher than the score of the original manual plan(P<0.05).The target dose coverage of the 3 models all met the clinical requirements,and their differences in the mean value of V70Gyof PTVnx,V60Gyof PTV1 and V54Gyof PTV2 were not more than 1%,but the Dmaxto the spinal cord and the Dmaxto optic chiasma had an obvious downtrend with the iterations of the model.Compared with those in the original manual plan,the V54Gyof brainstem,the Dmaxto spinal cord,the Dmean to left parotid gland,the V60Gyof left and right temporal lobe,and the Dmaxto optic nerve and optic chiasma in the final model A3 were decreased significantly,with statistical differences(P<0.05).Conclusion The automatic planning for NPC based on iteratively updating model is explored in the study,and it is found that the model quality and prediction ability can be effectively improved through continuously improving the training set,thereby effectively enhancing the quality of automatic planning and assisting physicists or dosimetrists in designing high-quality plans.
Keywords:nasopharyngeal carcinaoma  automatic planning  model iteration
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