Cheng Zhibiao, Chen Ping, Yan Jianhua
School of Information and Communication Engineering, North University of China, Taiyuan, 030051, China.
Shanxi Key Laboratory of Intelligent Detection Technology and Equipment, North University of China, Taiyuan, 030051, China.
EJNMMI Phys. 2025 Jan 30;12(1):9. doi: 10.1186/s40658-025-00724-9.
Single photon emission computed tomography (SPECT), a technique capable of capturing functional and molecular information, has been widely adopted in theranostics applications across various fields, including cardiology, neurology, and oncology. The spatial resolution of SPECT imaging is relatively poor, which poses a significant limitation, especially the visualization of small lesions. The main factors affecting the limited spatial resolution of SPECT include projection sampling techniques, hardware and software. Both hardware and software innovations have contributed substantially to improved SPECT imaging quality. The present review provides an overview of state-of-the-art methods for improving spatial resolution in clinical and pre-clinical SPECT systems. It delves into advancements in detector design and modifications, projection sampling techniques, traditional reconstruction algorithm development and optimization, and the emerging role of deep learning. Hardware enhancements can result in SPECT systems that are both lighter and more compact, while also improving spatial resolution. Software innovations can mitigate the costs of hardware modifications. This survey offers a thorough overview of the rapid advancements in resolution enhancement techniques within the field of SPECT, with the objective of identifying the most recent trends. This is anticipated to facilitate further optimization and improvement of clinical systems, enabling the visualization of small lesions in the early stages of tumor detection, thereby enhancing accurate localization and facilitating both diagnostic imaging and radionuclide therapy, ultimately benefiting both clinicians and patients.
单光子发射计算机断层扫描(SPECT)是一种能够获取功能和分子信息的技术,已在包括心脏病学、神经病学和肿瘤学在内的各个领域的诊疗应用中得到广泛应用。SPECT成像的空间分辨率相对较差,这构成了一个重大限制,尤其是对小病变的可视化。影响SPECT有限空间分辨率的主要因素包括投影采样技术、硬件和软件。硬件和软件的创新都对提高SPECT成像质量做出了重大贡献。本综述概述了临床和临床前SPECT系统中提高空间分辨率的最新方法。它深入探讨了探测器设计与改进、投影采样技术、传统重建算法的开发与优化以及深度学习的新兴作用。硬件增强可使SPECT系统更轻、更紧凑,同时提高空间分辨率。软件创新可降低硬件改进成本。本调查全面概述了SPECT领域分辨率增强技术的快速进展,目的是确定最新趋势。预计这将有助于进一步优化和改进临床系统,实现肿瘤检测早期小病变的可视化,从而提高精确定位,并促进诊断成像和放射性核素治疗,最终使临床医生和患者受益。