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Theoretical analysis of the thread effect in helical TomoTherapy.

机译:螺旋TomoTherapy中的螺纹效应的理论分析。

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PURPOSE: The longitudinal dose ripple on the off-axis caused by helical radiation delivery, such as the TomoTherapy system, has been observed, and its relation with respect to pitch has been studied with empirically found optimal pitches, 0.86n, by Kissick et al. [Med. Phys. 32, 1414-1423 (2005)]. This ripple artifact referred to as the thread effect is periodic in nature and is caused by various periodic factors. In this work, the factors that cause the thread effect were unveiled, including jaw profile divergence, the inverse square law, attenuation, and the cone effect, and their impact on the thread effect were studied. METHODS: Mathematical formulation for individual and combined factors were set up. Based on theoretical analysis and simulations, optimal pitches that result in local minima of the ripple amplitude with respect to the jaw width and off-axis distance were identified and verified. The effectiveness of optimization in reducing the thread effect were also studied. RESULTS: Analysis and simulation based on the square-shaped jaw profiles well characterize the thread effect. Simulations based on the real jaw profiles show reduced ripples and very good agreement of optimal pitches compared with those based on the square profiles. The optimal pitches were found to have little jaw width dependence, except for the real jaw profile of small width (1.05 cm). The optimal pitches for the real jaw profile of width 1.05 cm are unidentifiable except for the largest ones, due to the relative smoothness of the jaw profile. With optimized intensity modulation, the thread effect can be largely suppressed. For real jaw profiles, the optimal pitches with or without dose optimization do not change much. The numbers 0.86n found by Kissick et al. well approximate the optimal pitches for off-axis distance of 5 cm. However, optimal pitches are not universal for different off-axis distances: they decrease as the off-axis distance increases. CONCLUSIONS: The thread effect can be well explained by the proposed model. Optimization can largely reduce the thread effect. However, an optimal pitch reduces the ripple much easier especially when optimization is limited by many constraints. The optimal pitches predicted by the proposed model could be used as a reference for pitch selection regardless the tumor is at large or small off-axis distance.
机译:目的:观察到了由螺旋辐射传输(例如TomoTherapy系统)引起的离轴纵向剂量波动,并且通过实测发现最佳螺距为0.86n,由Kickick等人研究了其与螺距的关系。 。 [医生。物理32,1414-1423(2005)]。这种被称为“螺纹效应”的波纹伪影实际上是周期性的,并且是由各种周期性因素引起的。在这项工作中,揭示了引起螺纹效应的因素,包括颌部轮廓发散,平方反比定律,衰减和圆锥效应,以及它们对螺纹效应的影响。方法:建立了针对个体和综合因素的数学公式。基于理论分析和模拟,确定并验证了导致节拍幅度相对于钳口宽度和离轴距离局部最小的最佳螺距。还研究了优化在减少线程效应方面的有效性。结果:基于方形颚形轮廓的分析和仿真很好地表征了螺纹效果。与基于方形轮廓的仿真相比,基于实际钳口轮廓的仿真显示出减少的波纹,并且最佳螺距非常吻合。发现最佳节距几乎没有钳口宽度依赖性,除了实际的钳口轮廓小宽度(1.05厘米)外。由于颌部轮廓的相对光滑度,除了最大的齿距以外,无法确定宽度为1.05厘米的实际颌部轮廓的最佳间距。通过优化强度调制,可以大大抑制螺纹效应。对于真实的下颌轮廓,有或没有剂量优化的最佳螺距变化不大。 Kissick等人发现的数字为0.86n。很好地估计了5 cm的离轴距离的最佳螺距。但是,最佳螺距对于不同的离轴距离并不是通用的:随着离轴距离的增加,最佳螺距会减小。结论:该模型可以很好地解释螺纹效应。优化可以大大减少线程效应。但是,最佳螺距更容易降低纹波,尤其是当优化受到许多限制时。由提议的模型预测的最佳螺距可以用作螺距选择的参考,而不管肿瘤处于大或小的离轴距离。

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