放射治疗中的切伦科夫成像技术进展回顾:高环境光和辐射背景下的单光子级成像

Aubrey Parks, Jeremy Hallett, Alexander P Niver, Rongxiao Zhang, P. Brůža, Brian W Pogue
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摘要

.摘要.意义:单光子级成像技术在封闭的黑暗环境中已经应用了数十年,但在宏观成像中的应用却比较有限,因为它涉及到时间分级、滤波和处理,以查看感兴趣的信号。在放射治疗过程中,患者体内会产生一种称为切伦科夫辐射的低水平信号,利用单光子级灵敏度对其进行成像,可绘制组织中的辐射剂量沉积图。为了使这种极低光信号克服临床环境中的高背景和高噪声,我们利用了几项关键技术进步。目的:我们的综述总结了在高辐射噪声和高光学背景环境下实现单光子成像的具体技术进展。我们的工作讨论了应用和未来的机遇。方法:回顾了切伦科夫光、室内环境光、光学滤波、时间门控和图像处理的物理基础,以及相机的关键技术选择。随后讨论图像质量、噪声和后期处理,以及当前和未来的应用。成果:要实现切伦科夫实时成像,需要发明和优化时间门控技术和具有单光子功能的相机。要求视频帧频(≈ 10 至 30 fps)、快速触发(≈ μ s)、
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Review of Cherenkov imaging technology advances in radiotherapy: single-photon-level imaging in high ambient light and radiation backgrounds
. ABSTRACT. Significance: Single-photon-level imaging has been utilized for decades in closed dark environments; however, the utility for macroscopic imaging is more limited because it involves time-gating, filtering, and processing to view signals of interest. In radiation therapy delivery, a low-level signal called Cherenkov emission occurs from patients ’ bodies, which is imaged with single-photon level sensitivity, mapping radiation dose deposition in tissue. Several key technological advances have been leveraged to make this extremely low-light signal overcome high background and noise in clinical settings. Aim: Our review summarizes specific technological advances that have led to a single-photon imaging in high radiation noise and high optical background environments possible. Our work discusses applications and future opportunities. Approach: Physical fundamentals of Cherenkov light, ambient room light, optical filtering, time-gating, and image processing are reviewed with key technological camera choices. This is followed by discussion of image quality, noise, and post-processing, with current and future applications. Results: Invention and optimization of time-gating techniques and cameras with a single-photon capability were required to achieve real-time Cherenkov imaging. Requirements of video frame rate ( ≈ 10 to 30 fps), fast triggering ( ≈ μ s),
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