采用临床快速 kVp 开关 X 射线管和双层探测器的混合光谱 CT 系统,可改进碘定量。

Olivia F Sandvold, Roland Proksa, Heiner Daerr, Amy E Perkins, Kevin M Brown, Nadav Shapira, Thomas Koehler, J Webster Stayman, Grace J Gang, Ravindra M Manjeshwar, Peter B Noël
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引用次数: 0

摘要

光谱计算机断层扫描(CT)是一种功能强大的诊断工具,可提供定量的物质分解结果,通过对生理和功能的深入了解,增强临床成像效果。碘作为一种广泛使用的造影剂,可改善各种临床情况下的可视化效果。然而,在光谱 CT 系统中准确检测低浓度碘是一项挑战,这对于胰腺癌评估等情况尤为重要。在本研究中,我们展示了混合光谱 CT 仪器的初步结果,该仪器包括临床级硬件(快速 kVp 开关 X 射线管、双层探测器)。这种组合将光谱数据集从两个通道扩展到四个通道,我们假设低剂量和低碘浓度病例的量化准确性将得到改善。我们调节了系统占空比,以评估其对量化噪声和偏差的影响。通过比较两种混合加权策略和快速 kVp 切换,我们对碘定量性能进行了评估。这项评估是通过一个聚酰胺模型进行的,该模型包含七个碘插入物,含量从 0.5 毫克/毫升到 20 毫克/毫升不等。与其他方法相比,最大分离配置结合了来自 80 kVp、低光子能量检测器层和 140 kVp、高光子能量检测器层的数据,可生成定量噪声和偏差较低的光谱图像。本研究介绍了对混合光谱 CT 系统的初步评估,利用临床硬件证明了光谱成像在提高精度和灵敏度方面的潜力。这项研究有望提高光谱 CT 在各种临床场景中的成像性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hybrid spectral CT system with clinical rapid kVp-switching x-ray tube and dual-layer detector for improved iodine quantification.

Spectral computed tomography (CT) is a powerful diagnostic tool offering quantitative material decomposition results that enhance clinical imaging by providing physiologic and functional insights. Iodine, a widely used contrast agent, improves visualization in various clinical contexts. However, accurately detecting low-concentration iodine presents challenges in spectral CT systems, particularly crucial for conditions like pancreatic cancer assessment. In this study, we present preliminary results from our hybrid spectral CT instrumentation which includes clinical-grade hardware (rapid kVp-switching x-ray tube, dual-layer detector). This combination expands spectral datasets from two to four channels, wherein we hypothesize improved quantification accuracy for low-dose and low-iodine concentration cases. We modulate the system duty cycle to evaluate its impact on quantification noise and bias. We evaluate iodine quantification performance by comparing two hybrid weighting strategies alongside rapid kVp-switching. This evaluation is performed with a polyamide phantom containing seven iodine inserts ranging from 0.5 to 20 mg/mL. In comparison to alternative methodologies, the maximum separation configuration, incorporating data from both the 80 kVp, low photon energy detector layer and the 140 kVp, high photon energy detector layer produces spectral images containing low quantitative noise and bias. This study presents initial evaluations on a hybrid spectral CT system, leveraging clinical hardware to demonstrate the potential for enhanced precision and sensitivity in spectral imaging. This research holds promise for advancing spectral CT imaging performance across diverse clinical scenarios.

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