English

Towards the Information-Theoretic Limit of Programmable Photonics

Optics 2024-08-20 v1 Emerging Technologies

Abstract

The scalability of many programmable photonic circuits is limited by the 2π2\pi tuning range needed for the constituent phase shifters. To address this problem, we introduce the concept of a phase-efficient circuit architecture, where the average phase shift is 2π\ll 2\pi. We derive a universal information-theoretic limit to the phase-shift efficiency of universal multiport interferometers, and propose a "3-MZI" architecture that approaches this limit to within a factor of 2×2\times, approximately a 10×10\times reduction in average phase shift over the prior art, where the average phase shift scales inversely with system size as O(1/N)O(1/\sqrt{N}). For non-unitary circuits, we show that the 3-MZI saturates the theoretical bound for Gaussian-distributed target matrices. Using this architecture, we show optical neural network training with all phase shifters constrained to 0.2\lesssim 0.2 radians without loss of accuracy.

Keywords

Cite

@article{arxiv.2408.09673,
  title  = {Towards the Information-Theoretic Limit of Programmable Photonics},
  author = {Ryan Hamerly and Jasvith Raj Basani and Alexander Sludds and Sri Krishna Vadlamani and Dirk Englund},
  journal= {arXiv preprint arXiv:2408.09673},
  year   = {2024}
}

Comments

15 pages, 8 figures, 4 tables

R2 v1 2026-06-28T18:16:15.422Z