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探讨辐射探测器及其在医学成像中的应用。

A look at radiation detectors and their applications in medical imaging.

机构信息

Operational Research Centre in Healthcare, Near East University, Mersin 10, Nicosia, Turkey.

Department of Statistics, Carlos III Madrid University, Getafe, Madrid, Spain.

出版信息

Jpn J Radiol. 2024 Feb;42(2):145-157. doi: 10.1007/s11604-023-01486-z. Epub 2023 Sep 21.

Abstract

The effectiveness and precision of disease diagnosis and treatment have increased, thanks to developments in clinical imaging over the past few decades. Science is developing and progressing steadily in imaging modalities, and effective outcomes are starting to show up as a result of the shorter scanning periods needed as well as the higher-resolution images generated. The choice of one clinical device over another is influenced by technical disparities among the equipment, such as detection medium, shorter scan time, patient comfort, cost-effectiveness, accessibility, greater sensitivity and specificity, and spatial resolution. Lately, computational algorithms, artificial intelligence (AI), in particular, have been incorporated with diagnostic and treatment techniques, including imaging systems. AI is a discipline comprised of multiple computational and mathematical models. Its applications aided in manipulating sophisticated data in imaging processes and increased imaging tests' accuracy and precision during diagnosis. Computed tomography (CT), positron emission tomography (PET), and Single Photon Emission Computed Tomography (SPECT) along with their corresponding radiation detectors have been reviewed in this study. This review will provide an in-depth explanation of the above-mentioned imaging modalities as well as the radiation detectors that are their essential components. From the early development of these medical instruments till now, various modifications and improvements have been done and more is yet to be established for better performance which calls for a necessity to capture the available information and record the gaps to be filled for better future advances.

摘要

在过去的几十年中,临床影像学的发展提高了疾病诊断和治疗的效果和精准度。影像学模式的科学在不断发展和稳步进步,由于所需的扫描时间更短以及生成的图像分辨率更高,因此开始出现更有效的结果。选择一种临床设备而不是另一种设备受到设备之间的技术差异的影响,例如检测介质、扫描时间更短、患者舒适度、成本效益、可及性、更高的灵敏度和特异性以及空间分辨率。最近,计算算法,特别是人工智能 (AI),已经与诊断和治疗技术,包括成像系统结合使用。人工智能是一个由多个计算和数学模型组成的学科。它的应用有助于在成像过程中处理复杂的数据,并在诊断过程中提高成像测试的准确性和精准度。本研究回顾了计算机断层扫描 (CT)、正电子发射断层扫描 (PET) 和单光子发射计算机断层扫描 (SPECT) 及其相应的辐射探测器。本综述将深入解释上述成像模式以及作为其重要组成部分的辐射探测器。从这些医疗仪器的早期发展到现在,已经进行了各种修改和改进,为了实现更好的性能,还需要进行更多的改进,这就需要获取可用信息并记录有待填补的空白,以实现更好的未来发展。

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