Heisenberg-limited Hamiltonian learning for interacting bosons
July 10, 2023 Β· Declared Dead Β· π npj Quantum Information
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Authors
Haoya Li, Yu Tong, Hongkang Ni, Tuvia Gefen, Lexing Ying
arXiv ID
2307.04690
Category
quant-ph: Quantum Computing
Cross-listed
cs.IT,
math.NA
Citations
29
Venue
npj Quantum Information
Last Checked
6 months ago
Abstract
We develop a protocol for learning a class of interacting bosonic Hamiltonians from dynamics with Heisenberg-limited scaling. For Hamiltonians with an underlying bounded-degree graph structure, we can learn all parameters with root mean squared error $Ξ΅$ using $\mathcal{O}(1/Ξ΅)$ total evolution time, which is independent of the system size, in a way that is robust against state-preparation and measurement error. In the protocol, we only use bosonic coherent states, beam splitters, phase shifters, and homodyne measurements, which are easy to implement on many experimental platforms. A key technique we develop is to apply random unitaries to enforce symmetry in the effective Hamiltonian, which may be of independent interest.
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