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Quantum Sampling Algorithms, Phase Transitions, and Computational Complexity

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arxiv 2109.03007 v1 pith:4ZSHV3KT submitted 2021-09-07 quant-ph cond-mat.stat-mech

classification quant-phcond-mat.stat-mech
keywords quantumproblemstatealgorithmschainclassicalcomplexitycomputational
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Drawing independent samples from a probability distribution is an important computational problem with applications in Monte Carlo algorithms, machine learning, and statistical physics. The problem can in principle be solved on a quantum computer by preparing a quantum state that encodes the entire probability distribution followed by a projective measurement. We investigate the complexity of adiabatically preparing such quantum states for the Gibbs distributions of various classical models including the Ising chain, hard-sphere models on different graphs, and a model encoding the unstructured search problem. By constructing a parent Hamiltonian, whose ground state is the desired quantum state, we relate the asymptotic scaling of the state preparation time to the nature of transitions between distinct quantum phases. These insights enable us to identify adiabatic paths that achieve a quantum speedup over classical Markov chain algorithms. In addition, we show that parent Hamiltonians for the problem of sampling from independent sets on certain graphs can be naturally realized with neutral atoms interacting via highly excited Rydberg states.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Hybrid Classical-Quantum Sampling for Lattice Scalar Field Theory

    hep-lat 2025-06 conditional novelty 5.0 of 10

    A hybrid annealer-assisted Metropolis-Hastings method samples 2D lattice phi^4 theory, yet the claimed speedup is not benchmarked against the exact digitized heatbath baseline.

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