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A comprehensive geometric quality assurance framework for preclinical microirradiators

机译:临床临床微信质量的综合几何质量保证框架

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Purpose The mechanical and geometric accuracy of small animal image‐guided radiotherapy ( SA ‐ IGRT ) systems is critical and is affected by a number of system‐related factors. Because of the small dimensions involved in preclinical radiotherapy research, such factors can individually and/or cumulatively contribute to significant errors in the small animal radiation research. In this study, we developed and implemented a comprehensive quality assurance ( QA ) framework for characterizing the mechanical and geometric constancy and accuracy of the small animal radiation research platform ( SARRP ) system. Methods We quantified the accuracy of gantry and stage rotation isocentricity and positional stage translations. We determined the accuracy and symmetry of field sizes formed by collimators. We evaluated collimator assembly system performance by characterization of collimator axis alignment along the beam axis during gantry rotation. Furthermore, we quantified the end‐to‐end precision and accuracy of image‐guided delivery by examining the congruence of intended (e.g., imaging) and actual delivery (measured during experiment) isocenters. Results The fine and broad beams showed different central axes. The center of the beam was offset toward the cathode (0.22?±?0.05?mm) when switching the beam from a fine to a broad focus. Larger (custom‐made) collimators were more symmetrically centered than smaller (standard) collimators. The field formed by a 1‐mm circular collimator was found to deviate from the circular shape, measuring 1.55?mm and 1.25?mm in the X and Y directions, respectively. The 40‐mm collimator showed a field that was 1.65 (4.13%) and 1.3 (3.25%) mm smaller than nominal values in the X and Y directions, respectively, and the 30‐mm collimator field was smaller by 0.75?mm (2.5%) in the X direction. Results showed that fields formed by other collimators were accurate in both directions and had ≤2% error. The size of the gantry rotation isocenter was 1.45?±?0.15?mm. While the gantry rotated, lateral and longitudinal isocenter displacements ranged from 0 to ?0.34 and ?0.44 to 0.33?mm, respectively. Maximum lateral and longitudinal displacements were found at obliques gantry angles of ?135° and 45°, respectively. The stage translational accuracies were 0.015, 0.010, and 0?mm in the X, Y, and Z directions, respectively. The size of the stage rotation runout was 2.73?±?0.3?mm. Maximum displacements of the stage rotational axis were ?0.38 (X direction) and ?0.26 (Y direction)?mm at stage angles of ?45° and ?135°, respectively. We found that displacements of intended and actual delivery isocenters were 0.24?±?0.10, 0.12?±?0.62, and 0.12?±?0.42?mm in the X, Y, and Z directions, respectively. Conclusion We used the SARRP built‐in electronic portal imaging device ( EPID ) to perform most of the geometric QA tests, demonstrating the utility of the EPID for characterizing the geometric accuracy and precision of the SA ‐ IGRT system. However, in principle, the methodology and tests developed here are applicable to any digital imaging detector available in SA ‐ IGRT systems or film. The flexibility of film allows these tests to be adapted for QA of non‐ IGRT , cabinet irradiators, which make up many of preclinical small animal irradiators.
机译:目的,小动物图像引导放射疗法(SA - IGRT)系统的机械和几何精度至关重要,受许多系统相关因素的影响。由于临床放射治疗研究中涉及的小尺寸,因此这些因素可以单独和/或累积地导致小动物辐射研究中的重大错误。在这项研究中,我们开发并实施了综合质量保证(QA)框架,用于表征小型动物辐射研究平台(SARRP)系统的机械和几何常量和准确性。方法规定了机架和阶段旋转等内容和位置阶段翻译的准确性。我们确定了通过准直器形成的场尺寸的准确性和对称性。我们通过在龙门旋转期间沿着梁轴的准直符轴对准来评估准直器组装系统性能。此外,我们通过检查预期的(例如,成像)和实际递送(在实验期间测量)Isocenters来量化图像引导递送的端到端精度和准确性。结果精细和宽梁显示出不同的中心轴。当将光束从良好切换到广泛的焦点时,光束的中心偏移到阴极(0.22?±0.05Ω·mm)。较大(定制)准直器比较小的(标准)准直器更具对称的居中。发现由1mm圆形准直器形成的场分别偏离圆形,分别在X和Y方向上测量1.55Ωmm和1.25Ωmm。 40毫米准直器分别显示出比x和y方向上的标称值小的1.65(4.13%)和1.3(3.25%)mm,30毫米准直器场较小0.75Ωmm(2.5 %)在x方向上。结果表明,由其他准直器形成的磁场在两个方向上精确,误差≤2%。龙门旋转等温度器的尺寸为1.45?±0.15?mm。虽然平台旋转,横向和纵向等离子化位移分别从0到Δ0到0.34和0.44至0.33Ωmm。在135°和45°的倾角分别发现最大横向和纵向位移。阶段平移精度分别在X,Y和Z方向上为0.015,0.010和0≤mm。舞台旋转跳动的尺寸为2.73?±0.3?mm。阶段旋转轴的最大位移是0.38(x方向)和θ0.26(y方向)Δ25°和Δ135°的θmm。我们发现预期和实际递送等温度的位移分别为0.24Ω·?0.10,0.12?±0.62,0.12?±0.42ΩΩ0.42Ω·mm,分别在x,y和z方向上。结论我们使用SARRP内置电子门户成像装置(EPID)来执行大多数几何QA测试,演示了EPID的实用程序,用于表征SA - IGRT系统的几何精度和精度。然而,原则上,此处开发的方法和测试适用于SA - IGRT系统或胶片中的任何数字成像检测器。薄膜的灵活性允许这些测试适用于非IGRT,机柜辐照器的QA,其构成了许多突出的小动物辐照器。

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