4K-memristor analog-grade passive crossbar circuit

  • Kim, H.
  • Mahmoodi, M. R.
  • Nili, H.
  • Strukov, D. B.
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초록

The superior density of passive analog-grade memristive crossbar circuits enables storing large neural network models directly on specialized neuromorphic chips to avoid costly off-chip communication. To ensure efficient use of such circuits in neuromorphic systems, memristor variations must be substantially lower than those of active memory devices. Here we report a 64 x 64 passive crossbar circuit with -99% functional nonvolatile metal-oxide memristors. The fabrication technology is based on a foundry-compatible process with etchdown patterning and a low-temperature budget. The achieved <26% coefficient of variance in memristor switching voltages is sufficient for programming a 4K-pixel gray-scale pattern with a <4% relative tuning error on average. Analog properties are also successfully verified via experimental demonstration of a 64 x 10 vector-by-matrix multiplication with an average 1% relative conductance import accuracy to model the MNIST image classification by ex-situ trained single-layer perceptron, and modeling of a large-scale multilayer perceptron classifier based on more advanced conductance tuning algorithm.

키워드

SYNAPSESMEMORYRECOGNITIONSYSTEM
제목
4K-memristor analog-grade passive crossbar circuit
저자
Kim, H.Mahmoodi, M. R.Nili, H.Strukov, D. B.
DOI
10.1038/s41467-021-25455-0
발행일
2021-08-31
유형
Article
저널명
Nature Communications
12
1