architecture

一种用于小动物 PET 运动校正的光学追踪系统


在小动物正电子发射断层扫描(PET)中对清醒动物进行成像是一项重大挑战,通常需要某种形式的运动补偿。在本研究中,我们针对这一目的,将一款名为“Micron Tracker”的商用光学运动追踪器适配到了 microPET 系统上。我们评估了标记物尺寸的限制,对设备进行了空间校准,开发了一种数据同步方法,并开展了一项涉及多次离散三维运动的体模实验,以测试该运动追踪系统的关键组件。结果表明,该系统能够有效地利用小型轻量化标记物(约 15 mm × 18 mm)实现三维运动追踪,其校准精度达到了 0.46 mm RMS。数据流的同步精度约为 20 ms。此外,体模实验结果证实,该方法能显著减少运动伪影。本文所展示的技术与成果证实了将 Micron Tracker 适配至 microPET 环境以实现小型实验动物运动追踪的可行性。未来仍有改进空间,可针对同步方面的局限性进行优化,并进一步改良标记物设计,以实现更高的姿态追踪准确度和精密度。



An optical tracking system for motion correction in small animal PET


Abstract:

Imaging conscious animals in small animal positron emission tomography (PET) presents a significant challenge, and some form of motion compensation will normally be necessary. In this work, a commercial optical motion tracker called the micron tracker has been adapted to the microPET system for this purpose. We evaluated marker size limits, performed a spatial calibration for the devices, developed a synchronization method, and carried out a phantom study involving multiple, discrete 3D movements to test key components of the motion tracking system. We have demonstrated that small and lightweight markers (approx. 15 mm x 18 mm) are feasible with this system for 3D motion tracking, calibration accuracy was 0.46 mm RMS. Synchronization of the data streams was achieved with a precision of approximately 20 ms. Moreover, a marked reduction in motion artifacts was demonstrated in the phantom study. The techniques and results presented here demonstrate the feasibility of adapting the micron tracker to the microPET environment for motion tracking of small laboratory animals. There is scope to improve on limitations in synchronization and further optimize marker design to achieve better pose accuracy and precision.