神经形态工程学
材料科学
长时程增强
相变存储器
计算机科学
突触
突触重量
初始化
过程(计算)
人工神经网络
纳米技术
神经科学
人工智能
生物
操作系统
生物化学
受体
化学
程序设计语言
图层(电子)
作者
Selina La Barbera,D. R. B. Ly,G. Navarro,N. Castellani,O. Cueto,G. Bourgeois,B. De Salvo,E. Nowak,Damien Querlioz,Elisa Vianello
标识
DOI:10.1002/aelm.201800223
摘要
Abstract Phase change memory can provide a remarkable artificial synapse for neuromorphic systems, as it features excellent reliability and can be used as an analog memory. However, this approach is complicated by the fact that crystallization and amorphization differ radically: crystallization can be realized in a very gradual manner, very similarly to synaptic potentiation, while the amorphization process tends to be abrupt, unlike synaptic depression. Addressing this non‐biorealism of amorphization requires system‐level solutions that have considerable energy cost or limit the generality of the approach. This work demonstrates experimentally that an adaptation of the memory structure associated with an initialization electrical pulse followed by a sequence of identical fast pulses can overcome this challenge. A single device can then naturally implement gradual long‐term potentiation and depression, much like synapses in biology. This study evidences through statistical measurements the reproducibility of the approach, discusses its physical origin, as well as the importance of the device architecture and of the initial electrical pulse. Through the use of system‐level simulation, it is shown that this device is especially adapted to a neuroscience‐inspired learning. These results highlight how nanodevices can be suitable for bioinspired applications while retaining the qualities of industrial technology.
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