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Research PaperResearchia:202603.30065

Complexity of Quadratic Bosonic Hamiltonian Simulation: $\mathsf{BQP}$-Completeness and $\mathsf{PostBQP}$-Hardness

Lilith Zschetzsche

Abstract

The computational complexity of simulating the dynamics of physical quantum systems is a central question at the interface of quantum physics and computer science. In this work, we address this question for the simulation of exponentially large bosonic Hamiltonians with quadratic interactions. We present two results: First, we introduce a broad class of quadratic bosonic problems for which we prove that they are $\mathsf{BQP}$-complete. Importantly, this class includes two known $\mathsf{BQP}$-c...

Submitted: March 30, 2026Subjects: Quantum Physics; Quantum Computing

Description / Details

The computational complexity of simulating the dynamics of physical quantum systems is a central question at the interface of quantum physics and computer science. In this work, we address this question for the simulation of exponentially large bosonic Hamiltonians with quadratic interactions. We present two results: First, we introduce a broad class of quadratic bosonic problems for which we prove that they are BQP\mathsf{BQP}-complete. Importantly, this class includes two known BQP\mathsf{BQP}-complete problems as special cases: Classical oscillator networks and continuous-time quantum walks. Second, we show that extending the aforementioned class to even more general quadratic Hamiltonians results in a PostBQP\mathsf{PostBQP}-hard problem. This reveals a sharp transition in the complexity of simulating large quantum systems on a quantum computer, as well as in the difference in complexity between their simulation on classical and quantum computers.


Source: arXiv:2603.26561v1 - http://arxiv.org/abs/2603.26561v1 PDF: https://arxiv.org/pdf/2603.26561v1 Original Link: http://arxiv.org/abs/2603.26561v1

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Date:
Mar 30, 2026
Topic:
Quantum Computing
Area:
Quantum Physics
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