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arXiv · 2503.21603

All-Optical High-speed Programmable Nonlinear Activation Functions using a Fabry-Perot Laser

Abstract

The threads of photonics are eagerly awaited to redefine the future of neuromorphic data processing, especially as the computing-intensive artificial intelligence models become an unavoidable part of our everyday lives. Still, there is much to be improved within the domain of photonic nonlinear activation functions, as the programmable, all-optical, energy-efficient nonlinearities remain beyond the grasp of today's state of the art. In this paper, we address the issue at hand and propose a novel approach in the realization of high-performing all-optical photonic activations. Through simulations and experiments, we show that Fabry-Perot laser diodes (FP-LDs) exhibit richness and high programmability of their nonlinear response to input optical pulses with widths as low as 25 ps. We demonstrate a variety of sigmoid-like and inverted PReLU-like trends to be used as all-optical activation functions in photonic neural networks, testing their performance in stringent, real-life training scenarios with randomized data patterns at repetition rates up to 10 GHz. The programmability of activations is shown using a multitude of experimental operating parameters, among which we highlight the power variation of an additional continuous wave laser, injected into the FP-LD, enriching our approach with all-optical control of all-optical activations. With very low static power consumption of our active element, we achieve a record-breaking energy draw on the order of pJ to hundreds of fJ per nonlinear operation.

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Mladen Banović, Petar Atanasijević, Antonios Prapas, Christos Pappas, Jasna Crnjanski, Apostolos Tsakyridis, Miltiadis Moralis-Pegios, Konstantinos Vyrsokinos, Milanka Lović, Nina Zdravković, Milena Mićić, Marko Krstić, Slobodan Petričević, Nikos Pleros, Dejan Gvozdić. 2025-03-27. All-Optical High-speed Programmable Nonlinear Activation Functions using a Fabry-Perot Laser. https://arxiv.org/abs/2503.21603

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