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Environment-Adaptable Artificial Visual Perception Behaviors Using a Light-Adjustable Optoelectronic Neuromorphic Device Array

机译:使用光可调节光电神经形态设备阵列的环境适应性人工视觉感知行为。

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摘要

Emulating the biological visual perception system typically requires a complex architecture including the integration of an artificial retina and optic nerves with various synaptic behaviors. However, self-adaptive synaptic behaviors, which are frequently translated into visual nerves to adjust environmental light intensities, have been one of the serious challenges for the artificial visual perception system. Here, an artificial optoelectronic neuromorphic device array to emulate the light-adaptable synaptic functions (photopic and scotopic adaptation) of the biological visual perception system is presented. By employing an artificial visual perception circuit including a metal chalcogenide photoreceptor transistor and a metal oxide synaptic transistor, the optoelectronic neuromorphic device successfully demonstrates diverse visual synaptic functions such as phototriggered short-term plasticity, long-term potentiation, and neural facilitation. More importantly, the environment-adaptable perception behaviors at various levels of the light illumination are well reproduced by adjusting load transistor in the circuit, exhibiting the acts of variable dynamic ranges of biological system. This development paves a new way to fabricate an environmental-adaptable artificial visual perception system with profound implications for the field of future neuromorphic electronics.
机译:模拟生物视觉系统通常需要复杂的体系结构,包括将人工视网膜和视神经与各种突触行为整合在一起。然而,自适应突触行为经常转化为视觉神经以调节环境光强度,已经成为人工视觉感知系统的严重挑战之一。在这里,提出了一种人工光电神经形态装置阵列,以模拟生物视觉感知系统的光适应性突触功能(明视和暗视适应)。通过采用包括金属硫属化物感光晶体管和金属氧化物突触晶体管的人工视觉感知电路,该光电神经形态装置成功展示了多种视觉突触功能,例如光触发的短期可塑性,长期增强和神经促进作用。更重要的是,通过调节电路中的负载晶体管,可以很好地再现各种光照水平下对环境的感知行为,表现出生物系统动态范围的变化。这一发展为制造一种环境适应性的人工视觉系统提供了一种新方法,该系统对未来的神经形态电子学领域具有深远的影响。

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