arXiv:2409.11543eess.IV2024-09被引 16

自监督方法同时降噪并校正铷-82心肌PET成像的正电子射程问题。

Noise-aware Dynamic Image Denoising and Positron Range Correction for Rubidium-82 Cardiac PET Imaging via Self-supervision

  • 基于自监督学习,动态感知噪声并统一处理不同帧的噪声差异。
  • 降噪后图像衍生输入函数与动脉采样值误差降低31.7%,心肌血流量化误差减少79.1%。
  • 无需配对数据,适用于不同设备和人群,适合临床高精度定量研究。

铷-82(82-Rb)是广泛用于心脏PET成像的放射性同位素。由于其半衰期短,动态图像噪声严重,信噪比低导致定量结果偏差,且不同时间帧间噪声水平变化大。现有去噪方法因缺乏配对训练数据且难以适应多变噪声而无效。此外,82-Rb发射高能正电子,导致湮灭点偏离真实位置,影响空间分辨率。本文提出一种自监督方法,实现噪声感知的动态图像去噪与正电子射程校正。在健康志愿者队列上测试,所提方法显著提升图像视觉质量。通过与连续动脉血样采集的动脉输入函数(AIF)对比,图像衍生输入函数(IDIF)的平均面积差(AUC)从11.09%降至7.58%。心肌血流量(MBF)量化经15-O-water扫描验证,平均差异由0.43降至0.09。在37例来自不同国家、使用不同扫描仪的患者数据上也表现出良好泛化能力。

原文摘要 · Abstract (English)

Rb-82 is a radioactive isotope widely used for cardiac PET imaging. Despite numerous benefits of 82-Rb, there are several factors that limits its image quality and quantitative accuracy. First, the short half-life of 82-Rb results in noisy dynamic frames. Low signal-to-noise ratio would result in inaccurate and biased image quantification. Noisy dynamic frames also lead to highly noisy parametric images. The noise levels also vary substantially in different dynamic frames due to radiotracer decay and short half-life. Existing denoising methods are not applicable for this task due to the lack of paired training inputs/labels and inability to generalize across varying noise levels. Second, 82-Rb emits high-energy positrons. Compared with other tracers such as 18-F, 82-Rb travels a longer distance before annihilation, which negatively affect image spatial resolution. Here, the goal of this study is to propose a self-supervised method for simultaneous (1) noise-aware dynamic image denoising and (2) positron range correction for 82-Rb cardiac PET imaging. Tested on a series of PET scans from a cohort of normal volunteers, the proposed method produced images with superior visual quality. To demonstrate the improvement in image quantification, we compared image-derived input functions (IDIFs) with arterial input functions (AIFs) from continuous arterial blood samples. The IDIF derived from the proposed method led to lower AUC differences, decreasing from 11.09% to 7.58% on average, compared to the original dynamic frames. The proposed method also improved the quantification of myocardium blood flow (MBF), as validated against 15-O-water scans, with mean MBF differences decreased from 0.43 to 0.09, compared to the original dynamic frames. We also conducted a generalizability experiment on 37 patient scans obtained from a different country using a different scanner.

PET成像去噪自监督心肌血流

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