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120 GOPS Photonic Tensor Core in Thin-film Lithium Niobate for Inference and in-situ Training

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arxiv 2311.16896 v3 pith:CKGCOR2J submitted 2023-11-28 physics.optics cs.ETphysics.app-ph

classification physics.opticscs.ETphysics.app-ph
keywords in-situphotonictensortrainingcoregopslearninglithium
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Photonics offers a transformative approach to artificial intelligence (AI) and neuromorphic computing by enabling low-latency, high-speed, and energy-efficient computations. However, conventional photonic tensor cores face significant challenges in constructing large-scale photonic neuromorphic networks. Here, we propose a fully integrated photonic tensor core, consisting of only two thin-film lithium niobate (TFLN) modulators, a III-V laser, and a charge-integration photoreceiver. Despite its simple architecture, it is capable of implementing an entire layer of a neural network with a computational speed of 120 GOPS, while also allowing flexible adjustment of the number of inputs (fan-in) and outputs (fan-out). Our tensor core supports rapid in-situ training with a weight update speed of 60 GHz. Furthermore, it successfully classifies (supervised learning) and clusters (unsupervised learning) 112 * 112-pixel images through in-situ training. To enable in-situ training for clustering AI tasks, we offer a solution for performing multiplications between two negative numbers.

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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. All-optical temporal integration mediated by subwavelength heat antennas

    physics.optics 2025-05 conditional novelty 6.0 of 10

    A ring resonator with titanium nano-heaters absorbs control light at standing-wave antinodes, heats up, and shifts a probe wavelength, performing all-optical temporal integration and nonlinear activation in a single device.

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