A CMOL-Like Memristor-CMOS Neuromorphic Chip-Core Demonstrating Stochastic Binary STDP
L. A. Camu\~nas-Mesa, E. Vianello, C. Reita, T. Serrano-Gotarredona,, B. Linares-Barranco

TL;DR
This paper presents a novel monolithic CMOL-like neuromorphic chip core that overcomes key technical challenges by using a geometrical layout and binary stochastic STDP learning, demonstrating reliable memristor-based synaptic functionality.
Contribution
It introduces a pseudo-CMOL chip design that bypasses the need for analog memristor memories by employing binary stochastic STDP, enhancing reliability and density.
Findings
Successful fabrication of a 64x64 neuron spiking neural network
Implementation of binary stochastic STDP learning rule
Memristor variability insensitive computations achieved
Abstract
The advent of nanoscale memristors raised hopes of being able to build CMOL (CMOS/nanowire/moLecular) type ultra-dense in-memory-computing circuit architectures. In CMOL, nanoscale memristors would be fabricated at the intersection of nanowires. The CMOL concept can be exploited in neuromorphic hardware by fabricating lower-density neurons on CMOS and placing massive analog synaptic connectivity with nanowire and nanoscale-memristor fabric post-fabricated on top. However, technical problems have hindered such developments for presently available reliable commercial monolithic CMOS-memristor technologies. On one hand, each memristor needs a MOS selector transistor in series to guarantee forming and programming operations in large arrays. This results in compound MOS-memristor synapses (called 1T1R) which are no longer synapses at the crossing of nanowires. On the other hand, memristors…
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Taxonomy
TopicsAdvanced Memory and Neural Computing · Ferroelectric and Negative Capacitance Devices · CCD and CMOS Imaging Sensors
