Skyrmion based energy-efficient straintronic physical reservoir computing

Author:

Rajib Md MahadiORCID,Misba Walid AlORCID,Chowdhury Md Fahim FORCID,Alam Muhammad SabbirORCID,Atulasimha JayasimhaORCID

Abstract

Abstract Physical Reservoir Computing (PRC) is an unconventional computing paradigm that exploits the nonlinear dynamics of reservoir blocks to perform temporal data classification and prediction tasks. Here, we show with simulations that patterned thin films hosting skyrmion can implement energy-efficient straintronic reservoir computing (RC) in the presence of room-temperature thermal perturbation. This RC block is based on strain-induced nonlinear breathing dynamics of skyrmions, which are coupled to each other through dipole and spin-wave interaction. The nonlinear and coupled magnetization dynamics were exploited to perform temporal data classification and prediction. Two performance metrics, namely Short-Term Memory (STM) and Parity Check (PC) capacity are studied and shown to be promising (4.39 and 4.62 respectively), in addition to showing it can classify sine and square waves with 100% accuracy. These demonstrate the potential of such skyrmion based PRC. Furthermore, our study shows that nonlinear magnetization dynamics and interaction through spin-wave and dipole coupling have a strong influence on STM and PC capacity, thus explaining the role of physical interaction in a dynamical system on its ability to perform RC.

Funder

CCI

NSF

Publisher

IOP Publishing

Subject

General Medicine

Cited by 7 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Passive frustrated nanomagnet reservoir computing;Communications Physics;2023-08-17

2. Perspective on unconventional computing using magnetic skyrmions;Applied Physics Letters;2023-06-26

3. Experimental demonstration of a skyrmion-enhanced strain-mediated physical reservoir computing system;Nature Communications;2023-06-10

4. The van der Pol physical reservoir computer;Neuromorphic Computing and Engineering;2023-05-11

5. Voltage Controlled Nanoscale Magnetic Devices for Non-Volatile Memory and Scalable Quantum Computing;2023 IEEE 73rd Electronic Components and Technology Conference (ECTC);2023-05

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