Pre-acquired CT-based attenuation correction with automated headrest removal for a brain-dedicated PET system.

IF 1.7 Q3 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING Radiological Physics and Technology Pub Date : 2023-12-01 Epub Date: 2023-10-11 DOI:10.1007/s12194-023-00744-z
Yuma Iwao, Go Akamatsu, Hideaki Tashima, Miwako Takahashi, Taiga Yamaya
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Abstract

Attenuation correction (AC) is essential for quantitative positron emission tomography (PET) images. Attenuation coefficient maps (μ-maps) are usually generated from computed tomography (CT) images when PET-CT combined systems are used. If CT has been performed prior to PET imaging, pre-acquired CT can be used for brain PET AC, because the human head is almost rigid. This pre-acquired CT-based AC approach is suitable for stand-alone brain-dedicated PET, such as VRAIN (ATOX Co. Ltd., Tokyo, Japan). However, the headrest of PET is different from the headrest in pre-acquired CT images, which may degrade the PET image quality. In this study, we prepared three different types of μ-maps: (1) based on the pre-acquired CT, where namely the headrest is different from the PET system (μ-map-diffHr); (2) manually removing the headrest from the pre-acquired CT (μ-map-noHr); and (3) artificially replacing the headrest region with the headrest of the PET system (μ-map-sameHr). Phantom images by VRAIN using each μ-map were investigated for uniformity, noise, and quantitative accuracy. Consequently, only the uniformity of the images using μ-map-diffHr was out of the acceptance criteria. We then proposed an automated method for removing the headrest from pre-acquired CT images. In comparisons of standardized uptake values in nine major brain regions from the 18F-fluoro-2-deoxy-D-glucose-PET of 10 healthy volunteers, no significant differences were found between the μ-map-noHr and the μ-map-sameHr. In conclusion, pre-acquired CT-based AC with automated headrest removal is useful for brain-dedicated PET such as VRAIN.

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预采集的基于CT的衰减校正,带有大脑专用PET系统的自动头枕移除功能。
衰减校正(AC)对于定量正电子发射断层扫描(PET)图像至关重要。当使用PET-CT组合系统时,衰减系数图(μ-图)通常由计算机断层扫描(CT)图像生成。如果在PET成像之前进行了CT,则可以将预先获得的CT用于大脑PET AC,因为人类头部几乎是刚性的。这种预先获得的基于CT的AC方法适用于独立的脑专用PET,如VRAIN(ATOX Co.,有限公司,日本东京)。然而,PET的头枕与预先获取的CT图像中的头枕不同,这可能会降低PET图像质量。在本研究中,我们制备了三种不同类型的μ-图谱:(1)基于预先采集的CT,即头枕与PET系统不同(μ-图谱diffHr);(2) 手动从预先采集的CT上取下头枕(μ-map-noHr);和(3)用PET系统的头枕人工替换头枕区域(μ-map-sameHr)。研究了使用每个μ图的VRAIN幻影图像的均匀性、噪声和定量精度。因此,只有使用μ-map-diffHr的图像的均匀性超出了验收标准。然后,我们提出了一种从预先采集的CT图像中去除头枕的自动方法。在10名健康志愿者的18F-氟-2-脱氧-D-葡萄糖-PET的9个主要大脑区域的标准化摄取值的比较中,μ-map-noHr和μ-map-sameHr之间没有发现显著差异。总之,具有自动头枕移除功能的基于预先获得的CT的AC对于大脑专用PET(如VRAIN)是有用的。
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来源期刊
Radiological Physics and Technology
Radiological Physics and Technology RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING-
CiteScore
3.00
自引率
12.50%
发文量
40
期刊介绍: The purpose of the journal Radiological Physics and Technology is to provide a forum for sharing new knowledge related to research and development in radiological science and technology, including medical physics and radiological technology in diagnostic radiology, nuclear medicine, and radiation therapy among many other radiological disciplines, as well as to contribute to progress and improvement in medical practice and patient health care.
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