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用于临床和临床前成像的单光子发射计算机断层扫描(SPECT)准直器选择、优化及制造综述。

Review of SPECT collimator selection, optimization, and fabrication for clinical and preclinical imaging.

作者信息

Van Audenhaege Karen, Van Holen Roel, Vandenberghe Stefaan, Vanhove Christian, Metzler Scott D, Moore Stephen C

机构信息

Department of Electronics and Information Systems, MEDISIP-IBiTech, Ghent University-iMinds Medical IT, De Pintelaan 185 block B/5, Ghent B-9000, Belgium.

Department of Radiology, University of Pennsylvania, Philadelphia, Pennsylvania 19104.

出版信息

Med Phys. 2015 Aug;42(8):4796-813. doi: 10.1118/1.4927061.

Abstract

In single photon emission computed tomography, the choice of the collimator has a major impact on the sensitivity and resolution of the system. Traditional parallel-hole and fan-beam collimators used in clinical practice, for example, have a relatively poor sensitivity and subcentimeter spatial resolution, while in small-animal imaging, pinhole collimators are used to obtain submillimeter resolution and multiple pinholes are often combined to increase sensitivity. This paper reviews methods for production, sensitivity maximization, and task-based optimization of collimation for both clinical and preclinical imaging applications. New opportunities for improved collimation are now arising primarily because of (i) new collimator-production techniques and (ii) detectors with improved intrinsic spatial resolution that have recently become available. These new technologies are expected to impact the design of collimators in the future. The authors also discuss concepts like septal penetration, high-resolution applications, multiplexing, sampling completeness, and adaptive systems, and the authors conclude with an example of an optimization study for a parallel-hole, fan-beam, cone-beam, and multiple-pinhole collimator for different applications.

摘要

在单光子发射计算机断层扫描中,准直器的选择对系统的灵敏度和分辨率有重大影响。例如,临床实践中使用的传统平行孔和扇形束准直器灵敏度相对较低,空间分辨率在厘米以下,而在小动物成像中,针孔准直器用于获得亚毫米分辨率,并且经常组合多个针孔以提高灵敏度。本文综述了临床和临床前成像应用中准直的生产方法、灵敏度最大化方法以及基于任务的优化方法。现在出现改进准直的新机会主要是由于(i)新的准直器生产技术和(ii)最近可用的具有改进的固有空间分辨率的探测器。这些新技术有望在未来影响准直器的设计。作者还讨论了诸如隔板穿透、高分辨率应用、复用、采样完整性和自适应系统等概念,并且作者以针对不同应用的平行孔、扇形束、锥形束和多针孔准直器的优化研究示例作为结论。

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