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Failure mode and effect analysis-based quality assurance for dynamic MLC tracking systems

机译:基于故障模式和影响分析的动态MLC跟踪系统的质量保证

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摘要

>Purpose: To develop and implement a failure mode and effect analysis (FMEA)-based commissioning and quality assurance framework for dynamic multileaf collimator (DMLC) tumor tracking systems.>Methods: A systematic failure mode and effect analysis was performed for a prototype real-time tumor tracking system that uses implanted electromagnetic transponders for tumor position monitoring and a DMLC for real-time beam adaptation. A detailed process tree of DMLC tracking delivery was created and potential tracking-specific failure modes were identified. For each failure mode, a risk probability number (RPN) was calculated from the product of the probability of occurrence, the severity of effect, and the detectibility of the failure. Based on the insights obtained from the FMEA, commissioning and QA procedures were developed to check (i) the accuracy of coordinate system transformation, (ii) system latency, (iii) spatial and dosimetric delivery accuracy, (iv) delivery efficiency, and (v) accuracy and consistency of system response to error conditions. The frequency of testing for each failure mode was determined from the RPN value.>Results: Failures modes with RPN≥125 were recommended to be tested monthly. Failure modes with RPN<125 were assigned to be tested during comprehensive evaluations, e.g., during commissioning, annual quality assurance, and after major software∕hardware upgrades. System latency was determined to be ∼193 ms. The system showed consistent and accurate response to erroneous conditions. Tracking accuracy was within 3%–3 mm gamma (100% pass rate) for sinusoidal as well as a wide variety of patient-derived respiratory motions. The total time taken for monthly QA was ∼35 min, while that taken for comprehensive testing was ∼3.5 h.>Conclusions: FMEA proved to be a powerful and flexible tool to develop and implement a quality management (QM) framework for DMLC tracking. The authors conclude that the use of FMEA-based QM ensures efficient allocation of clinical resources because the most critical failure modes receive the most attention. It is expected that the set of guidelines proposed here will serve as a living document that is updated with the accumulation of progressively more intrainstitutional and interinstitutional experience with DMLC tracking.
机译:>目的:为动态多叶准直仪(DMLC)肿瘤跟踪系统开发并实施基于故障模式和效果分析(FMEA)的调试和质量保证框架。>方法:对原型实时肿瘤跟踪系统进行了系统的故障模式和效果分析,该系统使用植入的电磁应答器进行肿瘤位置监测,并使用DMLC进行实时束适应。创建了详细的DMLC跟踪传递过程树,并确定了潜在的特定于跟踪的故障模式。对于每种故障模式,从发生概率,影响的严重程度和故障的可检测性的乘积中计算出风险概率数(RPN)。基于从FMEA获得的见解,开发了调试和QA程序以检查(i)坐标系转换的准确性,(ii)系统等待时间,(iii)空间和剂量传递精度,(iv)传递效率以及( v)系统对错误情况的响应的准确性和一致性。根据RPN值确定每种故障模式的测试频率。>结果:建议每月对RPN≥125的故障模式进行测试。 RPN <125的故障模式被指定在全面评估期间进行测试,例如在调试,年度质量保证期间以及在主要软件硬件升级之后。系统等待时间被确定为约193 ms。系统显示出对错误条件的一致而准确的响应。对于正弦波以及各种患者源性呼吸运动,跟踪精度在3%–3 mm伽玛(100%通过率)之内。每月进行质量检查的总时间约为35分钟,而进行全面测试的总时间约为3.5小时。>结论: FMEA被证明是开发和实施质量管理(QM)的强大而灵活的工具)用于DMLC跟踪的框架。作者得出的结论是,基于FMEA的QM的使用可确保临床资源的有效分配,因为最关键的失败模式受到最多的关注。可以预期,这里提出的这套指南将作为一份实时文件,随着DMLC跟踪中越来越多的机构间和机构间经验的积累而更新。

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