Computing with dynamical systems based on insulator-metal-transition oscillators

Author:

Parihar Abhinav1,Shukla Nikhil2,Jerry Matthew2,Datta Suman2,Raychowdhury Arijit1

Affiliation:

1. Georgia Institute of technology, School of Electrical and Computer Engineering, Atlanta, GA 30332, USA

2. University of Norte Dame, Department of Electrical Engineering, Notre Dame, IN 46556, USA

Abstract

AbstractIn this paper, we review recent work on novel computing paradigms using coupled oscillatory dynamical systems. We explore systems of relaxation oscillators based on linear state transitioning devices, which switch between two discrete states with hysteresis. By harnessing the dynamics of complex, connected systems, we embrace the philosophy of “let physics do the computing” and demonstrate how complex phase and frequency dynamics of such systems can be controlled, programmed, and observed to solve computationally hard problems. Although our discussion in this paper is limited to insulator-to-metallic state transition devices, the general philosophy of such computing paradigms can be translated to other mediums including optical systems. We present the necessary mathematical treatments necessary to understand the time evolution of these systems and demonstrate through recent experimental results the potential of such computational primitives.

Publisher

Walter de Gruyter GmbH

Subject

Electrical and Electronic Engineering,Atomic and Molecular Physics, and Optics,Electronic, Optical and Magnetic Materials,Biotechnology

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