arXiv:2602.02713physics.med-phcs.CV2026-02

用新算法实现低剂量灌注CT成像,碘浓度误差小于0.4mg/ml

Perfusion Imaging and Single Material Reconstruction in Polychromatic Photon Counting CT

  • 基于变分不等式重建,仅需已知背景组织即可恢复对比剂浓度图
  • 在10至100倍降剂量下,碘浓度重建误差仍低于0.4mg/ml
  • 适合追求低剂量、高精度灌注成像的临床与科研人员

灌注计算机断层扫描(CT)通过动态追踪对比剂在体内的分布来成像,是医学影像中辐射剂量最高的检查之一。近期,一种基于单调变分不等式(VI)的重建算法被提出用于单物质多能光子计数CT,已在低剂量条件下展现出良好前景。本文将该算法应用于灌注CT,假设静态背景组织已知,重建对比剂浓度分布,提出VI-PRISM方法。在包含水和不同浓度碘的数字体模上评估其在降低辐射剂量方面的潜力。模拟碘浓度范围为0.05至2.5 mg/ml,X射线源能量最高达100 keV,探测器单元每秒光子数从10⁵降至10²。投影角度数从984减少至8,以分析视角与光强分配之间的权衡。结果表明,与滤波反投影(FBP)相比,VI-PRISM在所有测试的源强度水平下均保持碘浓度估计误差低于0.4 mg/ml。即使剂量降低10至100倍,其重建质量仍与FBP相当。在所有光子预算和角度采样密度下,VI-PRISM的均方根误差更低,噪声更小,信噪比更高。即便在极端光子匮乏与稀疏采样条件下,仍能将碘浓度误差控制在0.4 mg/ml以下,证明其可在光子计数CT中实现精确且高效低剂量的灌注成像。

原文摘要 · Abstract (English)

Background: Perfusion computed tomography (CT) images the dynamics of a contrast agent through the body over time, and is one of the highest X-ray dose scans in medical imaging. Recently, a theoretically justified reconstruction algorithm based on a monotone variational inequality (VI) was proposed for single material polychromatic photon-counting CT, and showed promising early results at low-dose imaging. Purpose: We adapt this reconstruction algorithm for perfusion CT, to reconstruct the concentration map of the contrast agent while the static background tissue is assumed known; we call our method VI-PRISM (VI-based PeRfusion Imaging and Single Material reconstruction). We evaluate its potential for dose-reduced perfusion CT, using a digital phantom with water and iodine of varying concentration. Methods: Simulated iodine concentrations range from 0.05 to 2.5 mg/ml. The simulated X-ray source emits photons up to 100 keV, with average intensity ranging from $10^5$ down to $10^2$ photons per detector element. The number of tomographic projections was varied from 984 down to 8 to characterize the tradeoff in photon allocation between views and intensity. Results: We compare VI-PRISM against filtered back-projection (FBP), and find that VI-PRISM recovers iodine concentration with error below 0.4 mg/ml at all source intensity levels tested. Even with a dose reduction between 10x and 100x compared to FBP, VI-PRISM exhibits reconstruction quality on par with FBP. Conclusion: Across all photon budgets and angular sampling densities tested, VI-PRISM achieved consistently lower RMSE, reduced noise, and higher SNR compared to filtered back-projection. Even in extremely photon-limited and sparsely sampled regimes, VI-PRISM recovered iodine concentrations with errors below 0.4 mg/ml, showing that VI-PRISM can support accurate and dose-efficient perfusion imaging in photon-counting CT.

灌注成像低剂量光子计数CT图像重建

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