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A comprehensive GPU-based framework for scatter estimation in single source, dual source, and photon-counting CT

机译:基于GPU的全面的GPU框架,用于单源,双源和光子计数CT的分布估计

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Scattered radiation is one of the leading causes of image quality degradation in computed tomography (CT), leading to decreased contrast sensitivity and inaccuracy of CT numbers. The established gold-standard technique for scatter estimation in CT is Monte Carlo (MC) simulation, which is computationally expensive, thus limiting its utility for clinical applications. In addition, the existing MC tools are generalized and often do not model a realistic patient and/or a scanner-specific scenario, including lack of models for alternative CT configurations. This study aims to fill these gaps by introducing a comprehensive GPU-based MC framework for estimating patient and scanner-specific scatter for single-source, dual-source, and photon-counting CT using vendor-specific geometry/components and anatomically realistic XCAT phantoms. The tool accurately models the physics of photon transport and includes realistic vendor-specific models for x-ray spectra, bowtie filter, anti-scatter grid, and detector response. To demonstrate the functionality of the framework, we characterized the scatter profiles for a Mercury and an XCAT phantom using multiple scanner configurations. The timing information from the simulations was tallied to estimate the speedup over a comparable CPU-based MC tool. We also utilized the scatter profiles from the simulations to enhance the realism of primary-only ray-traced images generated for the purpose of virtual clinical trials (VCT). A speedup as high as 900x over a CPU-based MC tool was also observed for our framework. The results indicate the capability of this framework to quantify scatter for different proposed CT configurations and the significance of scatter contribution for simulating realistic CT images.
机译:散射辐射是计算机断层摄影(CT)中的图像质量降解的主要原因之一,导致对比度敏感性和CT号的不准确性降低。用于CT的散射估计的已建立的金标准技术是蒙特卡罗(MC)模拟,其计算得昂贵,因此限制了其对临床应用的效用。此外,现有的MC工具是概括的,并且通常不会模拟现实的患者和/或特定扫描仪特定的场景,包括缺乏用于替代CT配置的模型。本研究旨在通过引入基于GPU的基于GPU的MC框架来估算患者和扫描仪特定于单源,双源和光子计数CT的基于GPU的MC框架来填补这些差距,用于使用特定于供应商的几何/分量和解剖学逼真的XCAT幻像。该工具准确地模拟了光子传输的物理,包括X射线光谱,Bowti滤波器,防散网和检测器响应的现实供应商特定模型。为了展示框架的功能,我们使用多个扫描仪配置表征了汞和Xcat幻像的散射型材。仿真中的定时信息被统计,以估计比较基于CPU的MC工具的加速。我们还利用了模拟中的散射概况来增强为虚拟临床试验(VCT)目的产生的唯一射线跟踪图像的现实主义。对于我们的框架,还观察到在基于CPU的MC工具上高达900倍的加速。结果表明该框架的能力来量化不同提出的CT配置的散射以及对模拟现实CT图像的分散贡献的重要性。

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