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Design and Control of a Photonic Neural Network Applied to High-Bandwidth Classification

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arxiv 1810.06652 v2 pith:L4W2IH6I submitted 2018-10-15 eess.SP

classification eess.SP
keywords networksclassificationneuralphotonicadditionbandwidthcascadeddemonstrated
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Neural networks can very effectively perform multidimensional nonlinear classification. However, electronic networks suffer from significant bandwidth limitations due to carrier lifetimes and capacitive coupling. This project investigates photonic neural networks that can get around these limitations by performing both the activation function and weighted addition in the optical domain using microring resonators. These optical microring resonators provide both nonlinearity and superior fan-in without compromising bandwidth. The ability to thermally calibrate networks of cascaded axons and dendrites and train such a network to solve nonlinear classification problems are demonstrated using theory and simulations. The former is also demonstrated experimentally on a two-channel axon cascaded into a two-channel dendrite, showing good agreement between simulation and experiment. In addition, the use of transverse modes to increase the size of each photonic layer is examined. Simulations that determined the optimal waveguide geometry for using these modes were experimentally validated.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Fully integrated hybrid multimode-multiwavelength photonic processor with picosecond latency

    physics.optics 2024-11 conditional novelty 7.0 of 10

    A monolithic photonic processor combining mode and wavelength multiplexing unscrambles 5 Gb/s MIMO streams and unjams RF signals with roughly 30 ps latency.

  2. Multi-dimensional optical neural network

    physics.optics 2024-11 conditional novelty 6.0 of 10

    A foundry-fabricated 2x2 optical matrix multiplier that uses two spatial modes (TE00 and TE01) in addition to wavelengths, increasing the input vector dimension for micro-ring-based optical neural networks.

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