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The dosimetric impact of control point spacing for sliding gap MLC fields

机译:控制点间距对滑动间隙MLC场的剂量学影响

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摘要

Dynamic sliding gap multileaf collimator (MLC) fields are used to model MLC properties within the treatment planning system (TPS) for dynamic treatments. One of the key MLC properties in the Eclipse TPS is the dosimetric leaf gap (DLG) and precise determination of this parameter is paramount to ensuring accurate dose delivery. In this investigation, we report on how the spacing between control points (CPs) for sliding gap fields impacts the dose delivery, MLC positioning accuracy, and measurement of the DLG. The central axis dose was measured for sliding gap MLC fields with gap widths ranging from 2 to 40 mm. It was found that for deliveries containing two CPs, the central axis dose was underestimated by the TPS for all gap widths, with the maximum difference being 8% for a 2 mm gap field. For the same sliding gap fields containing 50 CPs, the measured dose was always within ±2% of the TPS dose. By directly measuring the MLC trajectories we show that this dose difference is due to a systematic MLC gap error for fields containing two CPs, and that the cause of this error is due to the leaf position offset table which is incorrectly applied when the spacing between CPs is too large. This MLC gap error resulted in an increase in the measured DLG of 0.5 mm for both 6 MV and 10 MV, when using fields with 2 CPs compared to 50 CPs. Furthermore, this change in DLG was shown to decrease the mean TPS‐calculated dose to the target volume by 2.6% for a clinical IMRT test plan. This work has shown that systematic MLC positioning errors occur for sliding gap MLC fields containing two CPs and that using these fields to model critical TPS parameters, such as the DLG, may result in clinically significant systematic dose calculation errors during subsequent dynamic MLC treatments.PACS number(s): 87.56.nk
机译:动态滑动间隙多叶准直仪(MLC)字段用于在动态治疗的治疗计划系统(TPS)中对MLC属性进行建模。 Eclipse TPS中的MLC关键特性之一是剂量学叶间隙(DLG),对此参数的精确确定对于确保精确的剂量输送至关重要。在这项调查中,我们报告了滑动间隙场的控制点(CP)之间的间距如何影响剂量输送,MLC定位精度和DLG的测量。测量间隙宽度为2至40 mm的滑动间隙MLC场的中心轴剂量。已发现,对于包含两个CP的交付,对于所有间隙宽度,TPS均低估了中心轴剂量,对于2 mm的间隙场,最大差值为8%。对于包含50个CP的相同滑动间隙场,测得的剂量始终在TPS剂量的±2%以内。通过直接测量MLC轨迹,我们发现此剂量差异是由于包含两个CP的田地系统性MLC间隙误差引起的,而造成此错误的原因是由于叶片位置偏移表而导致的,当CP之间的间距不正确时太大。当使用具有2个CP的场而不是50个CP时,此MLC间隙误差导致6 MV和10 MV的实测DLG增加0.5 mm。此外,对于临床IMRT测试计划,DLG的这种变化显示可将TPS计算的平均剂量降低至目标体积的2.6%。这项工作表明,包含两个CP的滑动间隙MLC字段会发生系统性MLC定位错误,并且使用这些字段对TPS关键参数进行建模(例如DLG)可能会在随后的动态MLC治疗期间导致临床上明显的系统性剂量计算错误。人数:87.56.nk

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