A Spiking Artificial Vision Architecture Based on Fully Emulating the Human Vision

材料科学 建筑 机器视觉 人工视觉 纳米技术 人工智能 视觉科学 计算机视觉 系统工程 计算机科学 工程类 视觉艺术 艺术
作者
Yi Wu,Wenjie Deng,Kexin Li,Xiaoting Wang,Bo Liu,Jingzhen Li,Zhijie Chen,Yongzhe Zhang
出处
期刊:Advanced Materials [Wiley]
卷期号:36 (19) 被引量:4
标识
DOI:10.1002/adma.202312094
摘要

Abstract Intelligent vision necessitates the deployment of detectors that are always‐on and low‐power, mirroring the continuous and uninterrupted responsiveness characteristic of human vision. Nonetheless, contemporary artificial vision systems attain this goal by the continuous processing of massive image frames and executing intricate algorithms, thereby expending substantial computational power and energy. In contrast, biological data processing, based on event‐triggered spiking, has higher efficiency and lower energy consumption. Here, this work proposes an artificial vision architecture consisting of spiking photodetectors and artificial synapses, closely mirroring the intricacies of the human visual system. Distinct from previously reported techniques, the photodetector is self‐powered and event‐triggered, outputting light‐modulated spiking signals directly, thereby fulfilling the imperative for always‐on with low‐power consumption. With the spiking signals processing through the integrated synapse units, recognition of graphics, gestures, and human action has been implemented, illustrating the potent image processing capabilities inherent within this architecture. The results prove the 90% accuracy rate in human action recognition within a mere five epochs utilizing a rudimentary artificial neural network. This novel architecture, grounded in spiking photodetectors, offers a viable alternative to the extant models of always‐on low‐power artificial vision system.
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