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Quantum algorithms for simulated annealing
classification
🪐 quant-ph
keywords
quantumannealingalgorithmclassicalsimulatedalgorithmsassociatedcomplexity
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This paper summarizes a quantum algorithm of [R.D. Somma, et.al., Phys. Rev. Lett. 101, 130504 (2008)] that simulates a classical annealing process for solving discrete optimization problems. The complexity of the quantum algorithm scales with the inverse square root of the spectral gap of an associated stochastic matrix. This represents a quadratic quantum speedup, in terms of the gap, with respect to classical simulated annealing.
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