Engineering Science and Mechanics, Penn State University, University Park, PA, 16802, USA.
Electrical Engineering, Penn State University, University Park, PA, 16802, USA.
Nat Commun. 2023 Sep 27;14(1):6021. doi: 10.1038/s41467-023-41046-7.
Animal behavior involves complex interactions between physiology and psychology. However, most AI systems neglect psychological factors in decision-making due to a limited understanding of the physiological-psychological connection at the neuronal level. Recent advancements in brain imaging and genetics have uncovered specific neural circuits that regulate behaviors like feeding. By developing neuro-mimetic circuits that incorporate both physiology and psychology, a new emotional-AI paradigm can be established that bridges the gap between humans and machines. This study presents a bio-inspired gustatory circuit that mimics adaptive feeding behavior in humans, considering both physiological states (hunger) and psychological states (appetite). Graphene-based chemitransistors serve as artificial gustatory taste receptors, forming an electronic tongue, while 1L-MoS memtransistors construct an electronic-gustatory-cortex comprising a hunger neuron, appetite neuron, and feeding circuit. This work proposes a novel paradigm for emotional neuromorphic systems with broad implications for human health. The concept of gustatory emotional intelligence can extend to other sensory systems, benefiting future humanoid AI.
动物行为涉及生理学和心理学之间的复杂相互作用。然而,由于对神经元水平上生理心理联系的理解有限,大多数人工智能系统在决策中忽略了心理因素。最近的脑成像和遗传学的进展揭示了调节摄食等行为的特定神经回路。通过开发同时包含生理学和心理学的神经仿生电路,可以建立新的情感人工智能范式,弥合人类和机器之间的差距。本研究提出了一种生物启发的味觉电路,该电路考虑到生理状态(饥饿)和心理状态(食欲),模拟了人类的适应性摄食行为。基于石墨烯的化学晶体管作为人工味觉味觉感受器,形成电子舌,而 1L-MoS 记忆晶体管构建了一个电子味觉皮质,包括饥饿神经元、食欲神经元和摄食电路。这项工作提出了一个具有广泛人类健康意义的情感神经形态系统的新范例。味觉情商的概念可以扩展到其他感觉系统,使未来的类人型人工智能受益。