Integrated Photonic Programmable Random Matrix Generator with Minimal Active Components
Kevin Zelaya, Mostafa Honari-Latifpour, Mohammad-Ali Miri

TL;DR
This paper presents a compact, programmable photonic circuit that efficiently generates random matrices with minimal active components, suitable for photonic computing and data encryption, demonstrated using silicon photonics technology.
Contribution
Introduction of a novel, minimal-component photonic circuit for random matrix generation using programmable phase layers and fixed mixing, reducing complexity in photonic systems.
Findings
Successfully generates white-noise optical signals with minimal phase layers
Uses silicon photonics with tunable thermal phase shifters for experimental validation
Offers a practical approach for photonic information processing and encryption applications
Abstract
Random matrices are fundamental in photonic computing because of their ability to model and enhance complex light interactions and signal processing capabilities. In manipulating classical light, random operations are utilized for random projections and dimensionality reduction, which are important for analog signal processing, computing, and imaging. In quantum information processing, random unitary operations are essential to boson sampling algorithms for multiphoton states in linear photonic circuits. In photonic circuits, random operations are realized through disordered structures resulting in fixed unitary operations or through large meshes of interferometers and reconfigurable phase shifters, which require a large number of phase shifters. In this article, we introduce a compact photonic circuit for generating random matrices by utilizing programmable phase modulation layers…
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Taxonomy
TopicsPhotonic Crystals and Applications · Advanced Optical Imaging Technologies · Optical Coherence Tomography Applications
