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Massively Scalable Wavelength Diverse Integrated Photonic Linear Neuron (2205.06180v2)

Published 11 May 2022 in cs.ET and physics.optics

Abstract: As computing resource demands continue to escalate in the face of big data, cloud-connectivity and the internet of things, it has become imperative to develop new low-power, scalable architectures. Neuromorphic photonics, or photonic neural networks, have become a feasible solution for the physical implementation of efficient algorithms directly on-chip. This application is primarily due to the linear nature of light and the scalability of silicon photonics, specifically leveraging the wide-scale complementary metal-oxide-semiconductor (CMOS) manufacturing infrastructure used to fabricate microelectronics chips. Current neuromorphic photonic implementations stem from two paradigms: wavelength coherent and incoherent. Here, we introduce a novel architecture that supports coherent and incoherent operation to increase the capability and capacity of photonic neural networks with a dramatic reduction in footprint compared to previous demonstrations. As a proof-of-principle, we experimentally demonstrate simple addition and subtraction operations on a foundry-fabricated silicon photonic chip. Additionally, we experimentally validate an on-chip network to predict the logical 2-bit gates AND, OR, and XOR to accuracies of $96.8\%, 99\%,$ and $98.5\%$, respectively. This architecture is compatible with highly wavelength parallel sources, enabling massively scalable photonic neural networks.

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Authors (9)
  1. Matthew van Niekerk (4 papers)
  2. Anthony Rizzo (7 papers)
  3. Hector Rubio Rivera (1 paper)
  4. Gerald Leake (6 papers)
  5. Daniel Coleman (5 papers)
  6. Christopher Tison (2 papers)
  7. Michael Fanto (3 papers)
  8. Keren Bergman (16 papers)
  9. Stefan Preble (4 papers)
Citations (1)

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