Algorithmic quantum simulation of memory effects
classification
🪐 quant-ph
cond-mat.mes-hall
keywords
quantumsimulationalgorithmiceffectsmemorymethodaimsbounds
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We propose a method for the algorithmic quantum simulation of memory effects described by integrodifferential evolution equations. It consists in the systematic use of perturbation theory techniques and a Markovian quantum simulator. Our method aims to efficiently simulate both completely positive and nonpositive dynamics without the requirement of engineering non-Markovian environments. Finally, we find that small error bounds can be reached with polynomially scaling resources, evaluated as the time required for the simulation.
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