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Towards the Information-Theoretic Limit of Programmable Photonics

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arxiv 2408.09673 v1 pith:TXWO44NX submitted 2024-08-19 physics.optics cs.ET

classification physics.opticscs.ET
keywords phasearchitectureaveragelimitshiftcircuitsinformation-theoreticprogrammable
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abstract

The scalability of many programmable photonic circuits is limited by the $2\pi$ 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 $\ll 2\pi$. 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 $2\times$, approximately a $10\times$ reduction in average phase shift over the prior art, where the average phase shift scales inversely with system size as $O(1/\sqrt{N})$. 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 $\lesssim 0.2$ radians without loss of accuracy.

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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. Complexity-energy trade-off in programmable unitary interferometers

    physics.optics 2025-07 conditional novelty 6.0 of 10

    Programmable optical interferometers face a trade-off: faster, simpler programming generally means losing up to a factor of n in useful output light energy.

  2. Low-loss, fabrication-tolerant, and highly-tunable Sagnac loop reflectors and Fabry-P\'erot cavities on thin-film lithium niobate

    physics.optics 2025-05 conditional novelty 6.0 of 10

    Tunable Sagnac-loop-based Fabry-Perot cavities on thin-film lithium niobate yield an inferred per-MZI loss below 1.5% and a thermo-optic phase-shift power of 2.5 mW.

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