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Noise-Induced Thermalization in Quantum Systems

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arxiv 2512.14842 v2 pith:S4NTRMAR submitted 2025-12-16 quant-ph cond-mat.stat-mech

Noise-Induced Thermalization in Quantum Systems

classification quant-ph cond-mat.stat-mech
keywords quantumnoisecomputingthermalizationgibbslocalmodelpractical
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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In the current Noisy Intermediate-Scale Quantum era, noise is widely regarded as the primary obstacle to achieving fault-tolerant quantum computation. However, certain stages of the quantum computing pipeline can, in fact, benefit from this noise. In this work, we exploit the Eigenstate Thermalization Hypothesis to show that noise generically accelerates a fundamental task in quantum computing -- the preparation of Gibbs states. We demonstrate this behavior using classical and quantum simulations with Haar-random and phase-flip noise, respectively, on a spin-1/2 chain with a local Hamiltonian. Our non-integrable model sees ~3.5x faster thermalization in the presence of noise, while our integrable model, which would not otherwise thermalize, reaches a thermal state due to noise. Since certifying a local Gibbs state is relatively easy on a quantum computer, our approach provides a new practical solution to a key problem in quantum computing. More broadly, these results establish a new paradigm in which noise can be harnessed on quantum computers, enabling practical advantages before the years of fault-tolerance.

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