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Optimization of the performance of segmented scintillators for radiotherapy imaging through novel binning techniques

机译:通过新型衬砌技术进行放射治疗成像分段闪烁器的性能

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Thick, segmented crystalline scintillators have shown increasing promise as replacement x-ray converters for the phosphor screens currently used in active matrix flat-panel imagers (AMFPIs) in radiotherapy, by virtue of providing over an order of magnitude improvement in the detective quantum efficiency (DQE). However, element-to-element misalignment in current segmented scintillator prototypes creates a challenge for optimal registration with underlying AMFPI arrays, resulting in degradation of spatial resolution. To overcome this challenge, a methodology involving the use of a relatively high resolution AMFPI array in combination with novel binning techniques is presented. The array, which has a pixel pitch of 0.127 mm, was coupled to prototype segmented scintillators based on BGO, LYSO and CsI:Tl materials, each having a nominal element-to-element pitch of 1.016 mm and thickness of ~1 cm. The AMFPI systems incorporating these prototypes were characterized at a radiotherapy energy of 6 MV in terms of modulation transfer function, noise power spectrum, DQE, and reconstructed images of a resolution phantom acquired using a cone-beam CT geometry. For each prototype, the application of 8 × 8 pixel binning to achieve a sampling pitch of 1.016 mm was optimized through use of an alignment metric which minimized misregistration and thereby improved spatial resolution. In addition, the application of alternative binning techniques that exclude the collection of signal near septal walls resulted in further significant improvement in spatial resolution for the BGO and LYSO prototypes, though not for the CsI:Tl prototype due to the large amount of optical cross-talk resulting from significant light spread between scintillator elements in that device. The efficacy of these techniques for improving spatial resolution appears to be enhanced for scintillator materials that exhibit mechanical hardness, high density and high refractive index, such as BGO. Moreover, materials that exhibit these properties as well as offer significantly higher light output than BGO, such as CdWO4, should provide the additional benefit of preserving DQE performance.
机译:厚,分段的结晶闪烁体已经显示为当前在放射疗法中当前使用的磷光体筛网(AMFPI)中使用的磷光体筛网的更换X射线转换器的许多承诺,凭借在侦探量子效率的数量级( DQE)。然而,当前分段的闪烁器原型中的元素到元素未对准为具有底层AMFPI阵列的最佳注册创造了挑战,从而导致空间分辨率的退化。为了克服这一挑战,提出了一种涉及使用相对高分辨率的AMFPI阵列与新型衬砌技术相结合的方法。具有0.127mm的像素间距的阵列与基于BGO,LySO和CSI:TL材料的原型分段闪烁体偶联,每个r1材料具有1.016mm和厚度为1cm的标称元素到元素间距。结合这些原型的AMFPI系统在使用锥形光束CT几何中获取的调制传递函数,噪声功率谱,DQE和重建图像的调制传递函数,噪声功率谱,DQE和重建图像的放射治疗能量的特征在于6mV。对于每个原型,通过使用最小化误解的对准度量,优化了8×8像素盒以实现1.016mm的采样间距的应用,从而改善空间分辨率。此外,替代排放技术的应用排除了隔膜附近的信号集合,导致BGO和Lyso原型的空间分辨率进一步显着改善,但对于CSI:由于大量光学交叉而不是CSI:TL原型由该装置中的闪烁器元件之间的显着光线产生的谈话。用于改善空间分辨率的这些技术的功效似乎增强了表现出机械硬度,高密度和高折射率,例如BGO的闪烁体材料。此外,表现出这些性质的材料以及提供比BGO(如CDWO4)的光输出明显较高的光输出应提供保留DQE性能的额外益处。

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