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October 10, 2025Physical Review Research4 citationsOpen Access

Demonstration of hardware efficient photonic variational quantum algorithm

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IAIris AgrestiKPKoushik PaulPSPeter Schiansky

Key Points

  • This work demonstrates a method to leverage photonic systems for practical quantum computation.
  • Proof-of-principle results tackle a factorization task, showcasing feasibility with specific ansatz designs.
  • Combining classical optimizers with quantum estimations provides an efficient pathway for quantum applications.
  • The study highlights the potential of linear optical networks in achieving hardware efficient quantum computations.

Abstract

Quantum computing has changed the paradigm of computer science, where quantum technologies have promised to outperform classical ones. Such an advantage was only demonstrated for tasks with no application or out of reach for the state-of-the-art quantum technologies. In this context, a promising strategy to find practical use of quantum computers exploits hybrid models, where a quantum device estimates a hard-to-compute quantity, while a classical optimizer trains the parameters. In this work, we demonstrate that single photons and linear optical networks are sufficient for implementing variational quantum algorithms, when the problem specification (ansatz) is tailored to this specific platform. We show this by a proof-of-principle demonstration to tackle an instance of a factorization task, whose solution is encoded in the ground state of a suitable Hamiltonian. This work, which combines Variational Quantum Algorithms with hardware efficient ansätze for linear optics, showcases a promising pathway toward practical applications for photonic quantum platforms.

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Cite This Study

Agresti et al. (2025) studied this question.

synapsesocial.com/papers/68e861a57ef2f04ca37e4591https://doi.org/10.1103/d7bb-ybfh
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