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Low-power scalable multilayer optoelectronic neural networks enabled with incoherent light

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arxiv 2402.01988 v1 pith:3QTSZJQU submitted 2024-02-03 cs.ET physics.optics

classification cs.ETphysics.optics
keywords layersopticaloptoelectronicaccuracyapproachapproachescomputingdata
verification ladder T0 review T1 audit T2 compute T3 formal
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Optical approaches have made great strides towards the goal of high-speed, energy-efficient computing necessary for modern deep learning and AI applications. Read-in and read-out of data, however, limit the overall performance of existing approaches. This study introduces a multilayer optoelectronic computing framework that alternates between optical and optoelectronic layers to implement matrix-vector multiplications and rectified linear functions, respectively. Our framework is designed for real-time, parallelized operations, leveraging 2D arrays of LEDs and photodetectors connected via independent analog electronics. We experimentally demonstrate this approach using a system with a three-layer network with two hidden layers and operate it to recognize images from the MNIST database with a recognition accuracy of 92% and classify classes from a nonlinear spiral data with 86% accuracy. By implementing multiple layers of a deep neural network simultaneously, our approach significantly reduces the number of read-ins and read-outs required and paves the way for scalable optical accelerators requiring ultra low energy.

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Cited by 1 Pith paper

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  1. Reframing SAR Target Recognition as Visual Reasoning: A Chain-of-Thought Dataset with Multimodal LLMs

    eess.SP 2025-07 conditional novelty 5.0 of 10

    After up to three re-prompting attempts, GPT-4o correctly classified 98.32% of radar targets from candidate lists, and the paper packages the successful reasoning chains into a new SAR-CoT dataset.

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