Real-Time Imaging Enhancement of Handheld Photoacoustic System With FeRAM Crossbar Array Based Neuromorphic Design

神经形态工程学 生物医学中的光声成像 横杆开关 移动设备 铁电RAM 材料科学 计算机科学 光电子学 物理 光学 人工神经网络 铁电性 电信 人工智能 操作系统 电介质
作者
Zhengyuan Zhang,Tiancheng Cao,Siyu Liu,Haoran Jin,Wensong Wang,Xiangjun Yin,Chen Liu,Goh Wang Ling,Yuan Gao,Yuanjin Zheng
出处
期刊:IEEE Transactions on Biomedical Circuits and Systems [Institute of Electrical and Electronics Engineers]
卷期号:19 (5): 1031-1044
标识
DOI:10.1109/tbcas.2025.3538578
摘要

The miniaturization and real time imaging capability have always been the desired properties of photoacoustic imaging (PAI) system, which unlocked vast potential for personalized healthcare and diagnostics. While the imaging quality and resolution in such systems are inferior due to physics and system volume constraints, which limited its wide deployment and application. This paper proposes a novel platform to enhance the imaging quality of handheld PAI system in real time, integrating MultiResU-Net imaging enhancement algorithm with Ferroelectric random-access memory (FeRAM) crossbar array. The FeRAM crossbar array enables in memory computing, which is highly suitable for accelerating deep neural network where extensive matrix multiplications are involved. The hardware implementation of the algorithm is optimized for low-power operation on edge devices, a specifically designed algorithmic strategy is further introduced to accurately simulate the impact of hardware variation on the computation in the array with time complexity of O(mn). The feasibility and effectiveness of this method are demonstrated through simulation data (synthesized through physical model) and in vivo data, the experimental results demonstrate more than 10 times of imaging resolution improvement. The execution of neural network inference has been significantly accelerated and can be completed within a few microseconds, fully covering the imaging speed in handheld PAI system and satisfying the real time imaging capability. The whole platform can be integrated into a compact size of 25$\times$25$\times$20 cm3, which is a portable system with real time and high resolution imaging capability.
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