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Statistical process control and verifying positional accuracy of a cobra motion couch using step‐wedge quality assurance tool

机译:统计统计控制并使用阶梯楔形质量保证工具验证眼镜蛇运动床的位置精度

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摘要

This study utilizes process control techniques to identify action limits for TomoTherapy couch positioning quality assurance tests. A test was introduced to monitor accuracy of the applied couch offset detection in the TomoTherapy Hi‐Art treatment system using the TQA “Step‐Wedge Helical” module and MVCT detector. Individual X‐charts, process capability (cp), probability (P), and acceptability (cpk) indices were used to monitor a 4‐year couch IEC offset data to detect systematic and random errors in the couch positional accuracy for different action levels. Process capability tests were also performed on the retrospective data to define tolerances based on user‐specified levels. A second study was carried out whereby physical couch offsets were applied using the TQA module and the MVCT detector was used to detect the observed variations.Random and systematic variations were observed for the SPC‐based upper and lower control limits, and investigations were carried out to maintain the ongoing stability of the process for a 4‐year and a three‐monthly period. Local trend analysis showed mean variations up to ±0.5 mm in the three‐monthly analysis period for all IEC offset measurements. Variations were also observed in the detected versus applied offsets using the MVCT detector in the second study largely in the vertical direction, and actions were taken to remediate this error. Based on the results, it was recommended that imaging shifts in each coordinate direction be only applied after assessing the machine for applied versus detected test results using the step helical module. User‐specified tolerance levels of at least ±2 mm were recommended for a test frequency of once every 3 months to improve couch positional accuracy. SPC enables detection of systematic variations prior to reaching machine tolerance levels. Couch encoding system recalibrations reduced variations to user‐specified levels and a monitoring period of 3 months using SPC facilitated in detecting systematic and random variations. SPC analysis for couch positional accuracy enabled greater control in the identification of errors, thereby increasing confidence levels in daily treatment setups.
机译:这项研究利用过程控制技术来确定TomoTherapy卧榻定位质量保证测试的动作极限。引入了一个测试,以监视使用TQA“阶梯楔形螺旋”模块和MVCT检测器的TomoTherapy Hi-Art治疗系统中应用的床偏移检测的准确性。各个X线图,过程能力(cp),概率(P)和可接受性(cpk)指数用于监控4年的卧榻IEC偏移数据,以检测不同动作水平的卧榻位置精度中的系统误差和随机误差。还对追溯数据进行了过程能力测试,以根据用户指定的级别定义公差。进行了第二项研究,其中使用TQA模块应用了物理床偏移量,并使用MVCT检测器来检测观察到的变化,并观察了基于SPC的控制上下限的随机和系统变化,并进行了研究在4年和3个月的时间内保持过程的持续稳定性。局部趋势分析显示,对于所有IEC偏移量测量,在三个月的分析期内平均变化最大为±0.5 mm。在第二项研究中,使用MVCT检测器在检测到的偏移量与施加的偏移量之间也观察到了很大的变化,并且在很大程度上纠正了该误差。根据结果​​,建议仅在使用步进螺旋模块评估机器的应用结果与检测到的测试结果之后,才应用每个坐标方向上的成像偏移。建议用户指定的公差等级至少为±2 mm,以每3个月一次的测试频率进行试验,以提高躺椅的位置精度。 SPC可以在达到机器公差水平之前检测系统变化。沙发编码系统的重新校准将变化降低到用户指定的水平,并且使用SPC的3个月监控期有助于检测系统和随机变化。通过SPC分析可确定床的位置准确性,从而可以更好地控制错误的识别,从而提高日常治疗设置的置信度。

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