Ergodicity, lack thereof, and the performance of reservoir computing with memristive networks

被引:4
作者
Baccetti, Valentina [1 ]
Zhu, Ruomin [2 ]
Kuncic, Zdenka [2 ]
Caravelli, Francesco [3 ]
机构
[1] RMIT Univ, Sch Sci, Melbourne, Vic 3000, Australia
[2] Univ Sydney, Sch Phys, Sydney, NSW 2006, Australia
[3] Los Alamos Natl Lab, Alamos Natl Lab, Los Alamos, NM 87545 USA
来源
NANO EXPRESS | 2024年 / 5卷 / 01期
关键词
ergodicity; nanoscale memristive networks; memory; reservoir computing; MEMORY; DYNAMICS; CHAOS;
D O I
10.1088/2632-959X/ad2999
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Networks composed of nanoscale memristive components, such as nanowire and nanoparticle networks, have recently received considerable attention because of their potential use as neuromorphic devices. In this study, we explore ergodicity in memristive networks, showing that the performance on machine leaning tasks improves when these networks are tuned to operate at the edge between two global stability points. We find this lack of ergodicity is associated with the emergence of memory in the system. We measure the level of ergodicity using the Thirumalai-Mountain metric, and we show that in the absence of ergodicity, two different memristive network systems show improved performance when utilized as reservoir computers (RC). We highlight that it is also important to let the system synchronize to the input signal in order for the performance of the RC to exhibit improvements over the baseline.
引用
收藏
页数:19
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