IEEE Trans Biomed Circuits Syst. 2024 Feb;18(1):89-99. doi: 10.1109/TBCAS.2023.3307500. Epub 2024 Jan 26.
Electrical Impedance Tomography (EIT) systems have shown great promise in many fields such as real-time wearable healthcare imaging, but their fixed number of electrodes and placement locations limit the system's flexibility and adaptability for further advancement. In this article, we propose a flexible and reconfigurable EIT system (Flexi-EIT) based on digital active electrode (DAE) architecture to address these limitations. By integrating a reconfigurable number of up to 32 replaceable DAEs into the flexible printed circuit (FPC) based wearable electrode belt, we can enable rapid, reliable, and easy placement while maintaining high device flexibility and reliability. We also explore hardware-software co-optimization image reconstruction solutions to balance the size and accuracy of the model, the power consumption, and the real-time latency. Each DAE is designed using commercial chips and fabricated on a printed circuit board (PCB) measuring 13.1 mm × 24.4 mm and weighing 2 grams. In current excitation mode, it can provide programmable sinusoidal current signal output with frequencies up to 100 kHz and amplitudes up to 1 mA that meets IEC 60601-1 standard. In voltage acquisition mode, it can pre-amplify, filter, and digitize the external response voltage signal, improving the robustness of the system while avoiding the need for subsequent analog signal processing circuits. Measured results on a mesh phantom demonstrate that the Flexi-EIT system can be easily configured with different numbers of DAEs and scan patterns to provide EIT measurement frames at 38 fps and real-time EIT images with at least 5 fps, showing the potential to be deployed in a variety of application scenarios and providing the optimal balance of system performance and hardware resource usage solutions.
电阻抗断层成像(EIT)系统在实时可穿戴医疗成像等许多领域显示出巨大的应用潜力,但由于其固定数量的电极和放置位置,限制了系统的灵活性和适应性,无法进一步发展。在本文中,我们提出了一种基于数字有源电极(DAE)架构的灵活可重构 EIT 系统(Flexi-EIT),以解决这些限制。通过将多达 32 个可替换的 DAE 集成到基于柔性印刷电路(FPC)的可穿戴电极带上,我们可以实现快速、可靠和轻松的放置,同时保持高设备灵活性和可靠性。我们还探索了硬件-软件协同优化的图像重建解决方案,以平衡模型的大小和准确性、功耗和实时延迟。每个 DAE 都使用商业芯片设计,并在尺寸为 13.1mm×24.4mm、重量为 2 克的印刷电路板(PCB)上制造。在当前激励模式下,它可以提供可编程的正弦电流信号输出,频率高达 100kHz,幅度高达 1mA,符合 IEC 60601-1 标准。在电压采集模式下,它可以对外部响应电压信号进行前置放大、滤波和数字化,提高系统的鲁棒性,同时避免后续模拟信号处理电路的需要。在网格仿体上的测量结果表明,Flexi-EIT 系统可以轻松配置不同数量的 DAE 和扫描模式,以提供 38fps 的 EIT 测量帧和至少 5fps 的实时 EIT 图像,显示出在各种应用场景中部署的潜力,并提供系统性能和硬件资源使用解决方案的最佳平衡。