Ultralow-power reservoir computing based on bidirectionally operable ferroelectric capacitors with tunable time constants

油藏计算 电容感应 电容器 物理 非线性系统 电阻式触摸屏 水准点(测量) 波形 电子工程 电压 维数之咒 系列(地层学) 铁电性 功率(物理) 计算机科学 光电子学 神经形态工程学 电气工程 多路复用 极化(电化学) 重点(电信)
作者
Linyuan Mo,Zhen Fan,Jiali Ou,Zhiwei Chen,Haipeng Lin,Wenjie Hu,Wenjie Li,Meixia Li,Boyuan Cui,Hua Fan,Ruiqiang Tao,Guo Tian,Minghui Qin,Xubing Lu,Guofu Zhou,Xingsen Gao,Junming Liu
出处
期刊:Reports on Progress in Physics [IOP Publishing]
卷期号:89 (2): 028001-028001 被引量:3
标识
DOI:10.1088/1361-6633/ae3984
摘要

Physical reservoir computing (RC) systems have emerged as a prominent research frontier due to their exceptional efficiency in temporal information processing. However, existing implementations, predominantly utilizing resistive devices, face challenges pertaining to power efficiency and dynamic richness. Here, we propose a ferroelectric capacitor-linear capacitor (FC-LC) series device for RC implementation. By leveraging nonlinear polarization switching and back-switching, the FC-LC series device realizes two essential reservoir properties: nonlinearity and fading memory. In addition, the device exhibits an ultralow power consumption, which, along with its direct voltage readout capability, marks a significant advance over resistive reservoir devices. Moreover, the device features bidirectional operation and widely tunable time constants, thereby enhancing reservoir space dimensionality and state richness. Building upon these FC-LC series devices, a ferroelectric capacitive RC system is developed, which demonstrates superior performance in various benchmark tasks. By exploiting the bidirectional operation of the device, the RC system not only delivers enhanced performance in waveform classification but also enables high-accuracy multimodal digit recognition. Through strategically hybridizing the FC-LC series devices with varying time constants, the RC system achieves remarkable performance in Mackey-Glass time-series prediction. Our study paves the way for power-efficient, dynamic-rich RC systems capable of handling diverse temporal tasks.
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