A Photonic Parameter-shift Rule: Enabling Gradient Computation for Photonic Quantum Computers

Fuente: arXiv
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Hauptverfasser: Pappalardo, Axel, Emeriau, Pierre-Emmanuel, de Felice, Giovanni, Ventura, Brian, Jaunin, Hugo, Yeung, Richie, Coecke, Bob, Mansfield, Shane
Format: Preprint
Veröffentlicht: 2024
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author Pappalardo, Axel
Emeriau, Pierre-Emmanuel
de Felice, Giovanni
Ventura, Brian
Jaunin, Hugo
Yeung, Richie
Coecke, Bob
Mansfield, Shane
author_facet Pappalardo, Axel
Emeriau, Pierre-Emmanuel
de Felice, Giovanni
Ventura, Brian
Jaunin, Hugo
Yeung, Richie
Coecke, Bob
Mansfield, Shane
contents We present a method for gradient computation in quantum algorithms implemented on linear optical quantum computing platforms. While parameter-shift rules have become a staple in qubit gate-based quantum computing for calculating gradients, their direct application to photonic platforms has been hindered by the non-unitary nature of differentiated phase-shift operators in Fock space. We introduce a photonic parameter-shift rule that overcomes this limitation, providing an exact formula for gradient computation in linear optical quantum processors. Our method scales linearly with the number of input photons and utilizes the same parameterized photonic circuit with shifted parameters for each evaluation. This advancement bridges a crucial gap in photonic quantum computing, enabling efficient gradient-based optimization for variational quantum algorithms on near-term photonic quantum processors. We demonstrate the efficacy of our approach through numerical simulations in quantum chemistry and generative modeling tasks, showing superior optimization performance as well as robustness to noise from finite sampling and photon distinguishability compared to other gradient-based and gradient-free methods.
format Preprint
id arxiv_https___arxiv_org_abs_2410_02726
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle A Photonic Parameter-shift Rule: Enabling Gradient Computation for Photonic Quantum Computers
Pappalardo, Axel
Emeriau, Pierre-Emmanuel
de Felice, Giovanni
Ventura, Brian
Jaunin, Hugo
Yeung, Richie
Coecke, Bob
Mansfield, Shane
Quantum Physics
We present a method for gradient computation in quantum algorithms implemented on linear optical quantum computing platforms. While parameter-shift rules have become a staple in qubit gate-based quantum computing for calculating gradients, their direct application to photonic platforms has been hindered by the non-unitary nature of differentiated phase-shift operators in Fock space. We introduce a photonic parameter-shift rule that overcomes this limitation, providing an exact formula for gradient computation in linear optical quantum processors. Our method scales linearly with the number of input photons and utilizes the same parameterized photonic circuit with shifted parameters for each evaluation. This advancement bridges a crucial gap in photonic quantum computing, enabling efficient gradient-based optimization for variational quantum algorithms on near-term photonic quantum processors. We demonstrate the efficacy of our approach through numerical simulations in quantum chemistry and generative modeling tasks, showing superior optimization performance as well as robustness to noise from finite sampling and photon distinguishability compared to other gradient-based and gradient-free methods.
title A Photonic Parameter-shift Rule: Enabling Gradient Computation for Photonic Quantum Computers
topic Quantum Physics
url https://arxiv.org/abs/2410.02726