A perspective on physical reservoir computing with nanomagnetic devices

被引:34
作者
Allwood, Dan A. [1 ]
Ellis, Matthew O. A. [2 ]
Griffin, David [3 ]
Hayward, Thomas J. [1 ]
Manneschi, Luca [2 ]
Musameh, Mohammad F. KH. [4 ]
O'Keefe, Simon [3 ]
Stepney, Susan [3 ]
Swindells, Charles [1 ]
Trefzer, Martin A. [4 ]
Vasilaki, Eleni [2 ]
Venkat, Guru [1 ]
Vidamour, Ian [1 ,2 ]
Wringe, Chester [3 ]
机构
[1] Univ Sheffield, Dept Mat Sci & Engn, Sheffield S1 3JD, England
[2] Univ Sheffield, Dept Comp Sci, Sheffield S1 4DP, England
[3] Univ York, Dept Comp Sci, York YO10 5GH, England
[4] Univ York, Dept Elect Engn, York YO10 5DD, England
基金
欧盟地平线“2020”; 英国工程与自然科学研究理事会;
关键词
SPIN-WAVES;
D O I
10.1063/5.0119040
中图分类号
O59 [应用物理学];
学科分类号
摘要
Neural networks have revolutionized the area of artificial intelligence and introduced transformative applications to almost every scientific field and industry. However, this success comes at a great price; the energy requirements for training advanced models are unsustainable. One promising way to address this pressing issue is by developing low-energy neuromorphic hardware that directly supports the algorithm's requirements. The intrinsic non-volatility, non-linearity, and memory of spintronic devices make them appealing candidates for neuromorphic devices. Here, we focus on the reservoir computing paradigm, a recurrent network with a simple training algorithm suitable for computation with spintronic devices since they can provide the properties of non-linearity and memory. We review technologies and methods for developing neuromorphic spintronic devices and conclude with critical open issues to address before such devices become widely used.
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页数:10
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