DocumentCode :
641341
Title :
Design exploration methodology for memristor-based spiking neuromorphic architectures with the Xnet event-driven simulator
Author :
Bichler, Olivier ; Roclin, David ; Gamrat, Christian ; Querlioz, Damien
Author_Institution :
LIST, CEA, Gif-sur-Yvette, France
fYear :
2013
fDate :
15-17 July 2013
Firstpage :
7
Lastpage :
12
Abstract :
We introduce an event-based methodology, and its accompanying simulator (“Xnet”) for memristive nanodevice-based neuromorphic hardware, which aims to provide an intermediate modeling level, between low-level hardware description languages and high-level neural networks simulators used primarily in neurosciences. This simulator was used to establish several results on Spike-Timing-Dependent Plasticity (STDP) modeling and implementation with Resistive RAM (RRAM), Conductive Bridge RAM (CBRAM) and Phase-Change Memory (PCM) type of memristive nanodevices. We present several simulation case studies that illustrate the event-based simulation strategies that we implemented, including unsupervised features extraction and Monte Carlo simulations. A discussion comparing event-based and fixed time-step simulation is included as well, and gives some metrics to guide the choice between the two depending on the application to simulate.
Keywords :
Monte Carlo methods; circuit simulation; memristors; neural nets; phase change memories; random-access storage; Monte Carlo simulations; Xnet event-driven simulator; conductive bridge RAM; design exploration methodology; high-level neural networks simulators; low-level hardware description languages; memristor-based spiking neuromorphic architectures; phase-change memory; resistive RAM; spike-timing-dependent plasticity modeling; Computational modeling; Hardware; Monte Carlo methods; Nanoscale devices; Neuromorphics; Neurons; Phase change materials;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Nanoscale Architectures (NANOARCH), 2013 IEEE/ACM International Symposium on
Conference_Location :
Brooklyn, NY
Print_ISBN :
978-1-4799-0873-8
Type :
conf
DOI :
10.1109/NanoArch.2013.6623029
Filename :
6623029
Link To Document :
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