Joint Temporal and Spectral Processing for Improved Digital Subtraction Angiography using Photon-Counting Detectors.

IF 4.4 2区 医学 Q2 ENGINEERING, BIOMEDICAL
Suyu Liao, Xiaoxuan Zhang, Xiao Jiang, Matthew Tivnan, J Webster Stayman, Grace J Gang
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引用次数: 0

Abstract

Objective: Digital subtraction angiography (DSA) is the gold standard modality for diagnostics and guidance for interventional procedures. Spectral imaging has previously been explored for DSA, but severe noise amplification from material decomposition has impeded clinical adoption. We present a novel joint processing strategy that leverages both temporal and spectral information for material decomposition to address this issue.

Methods: We develop a model-based material decomposition approach that utilizes the pre- and post-contrast images simultaneously for material estimation. Performance was evaluated on a small-vessel phantom on a test bench with a photon-counting detector. Joint processing was compared with temporal subtraction and previously proposed spectral DSA techniques including hybrid subtraction and conventional three-material decomposition. Additional simulation was performed to investigate performance with perfectly calibrated spectral response and sensitivity to patient motion.

Results: The improved conditioning of the proposed method effectively reduces bias and noise in the spectral results and allows three-material decomposition with dual-energy spectral measurements. The method achieved more than an order of magnitude variance reduction compared to previously proposed spectral DSA techniques. Compared to temporal subtraction, a mean variance reduction of 23.9% was achieved in simulation and 10.8% in experimental data. The degree of reduction is object-dependent. Noise reduction achieved in physical experiments is slightly lower than that in simulation, likely due to bias from imperfect spectral calibration. The method is equally sensitive to motion compared to temporal subtraction.

Conclusion: The proposed method addresses a major image quality challenge limiting previous approaches and outperforms temporal subtraction.

Significance: Such improvements facilitate the clinical translation of spectral angiography.

联合时间和光谱处理改进的数字减影血管造影使用光子计数检测器。
目的:数字减影血管造影(DSA)是诊断和指导介入手术的金标准模式。光谱成像先前已经探索了DSA,但材料分解产生的严重噪声放大阻碍了临床应用。我们提出了一种新的联合处理策略,利用时间和光谱信息进行材料分解来解决这个问题。方法:我们开发了一种基于模型的材料分解方法,该方法同时利用前后对比图像进行材料估计。在一个装有光子计数探测器的实验台上,对一个小容器幻影进行了性能评估。联合处理与时间减法和先前提出的光谱DSA技术(包括混合减法和传统的三材料分解)进行了比较。另外进行了模拟,以研究具有完美校准的光谱响应和对患者运动的灵敏度的性能。结果:改进后的方法有效地降低了光谱结果中的偏差和噪声,实现了双能光谱测量的三物质分解。与先前提出的频谱DSA技术相比,该方法实现了超过一个数量级的方差减少。与时间减法相比,模拟数据的平均方差减少23.9%,实验数据的平均方差减少10.8%。还原的程度依赖于对象。物理实验中的降噪效果略低于模拟,可能是由于光谱校准不完善造成的偏差。与时间减法相比,该方法对运动同样敏感。结论:所提出的方法解决了限制以前方法的主要图像质量挑战,并且优于时间减法。意义:这些改进有助于频谱血管造影的临床翻译。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
IEEE Transactions on Biomedical Engineering
IEEE Transactions on Biomedical Engineering 工程技术-工程:生物医学
CiteScore
9.40
自引率
4.30%
发文量
880
审稿时长
2.5 months
期刊介绍: IEEE Transactions on Biomedical Engineering contains basic and applied papers dealing with biomedical engineering. Papers range from engineering development in methods and techniques with biomedical applications to experimental and clinical investigations with engineering contributions.
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