可靠、高效的SPECT成像的信息驱动角度采样

Hitesh Khunti, B. Rao, S. Obrzut
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引用次数: 0

摘要

低放射性药物剂量和缩短扫描时间的分子医学断层成像是追求更广泛和更安全的医疗应用。为了实现这一目标,我们提出了一种分析方法,以最佳地减少单光子发射计算机断层扫描(SPECT)技术的扫描时间或放射性药物剂量,同时不影响重建图像的准确性和重建的稳定性。此外,我们提供统计保证,以确保泛化。这是通过:(a)利用观测模型和Fisher信息驱动扫描策略,(b)与点扩散函数和重构算法的先验协调扫描,(c)通过Cramer-Rao界对重构图像方差提供统计保证来实现的。我们的方法将给定的总扫描时间最佳地分布在扫描角度上,以最小化给定图像重建算法的均方误差。它协调每个扫描角度的持续时间,以确保所选重建算法的最佳信息流。对于极大似然(ML)估计,我们导出了角采样的全局最优闭形式方程,对于极大后验(MAP)估计,我们证明了优化问题是凸函数的差分,可以有效地优化。利用真实SPECT图像和合成图像进行蒙特卡罗模拟,量化了所提出扫描策略的有效性。该算法对真实SPECT图像的PSNR比传统的均匀扫描方法提高了2 dB以上。这种改进可以用来减少50%以上的扫描持续时间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Information Driven Angular Sampling for Reliable and Efficient SPECT Imaging
Low radiopharmaceutical dose and reduced scan time for molecular medical tomographic imaging are pursued for wider and safer medical applications. Towards this goal we propose an analytical approach to optimally reduce scanning duration or radiopharmaceutical dose for Single Photon Emission Computed Tomographic (SPECT) techniques, while not compromising on reconstructed image accuracy and reconstruction stability. In addition, we provide statistical guarantees to ensure generalization. This is achieved by: (a) utilizing the observation model and Fisher information driven scan strategy, (b) coordinating scanning with point spread function and prior of the reconstruction algorithm, and (c) providing statistical guarantees on reconstructed image variance through the Cramer-Rao bound. Our approach distributes the given total scanning duration optimally across scan angles to minimize Mean Square Error for a given image reconstruction algorithm. It coordinates the duration at each scan angle to ensure optimal information flow to the chosen reconstruction algorithm. For maximum likelihood (ML) estimators we derive a globally optimal closed form equation for angular sampling, and for maximum a posteriori (MAP) estimators we show the optimization problem is a difference of convex functions which can be efficiently optimized. The efficacy of the proposed scanning strategy is quantified through Monte Carlo simulations using real SPECT images and synthetic phantoms. The proposed algorithm achieves more than 2 dB PSNR improvement over conventional uniform scanning approach for real SPECT images. This improvement could be traded in to achieve more than 50% reduction in scan duration.
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