Quantum error mitigation in the regime of high noise using deep neural
network: Trotterized dynamics
- URL: http://arxiv.org/abs/2310.13382v2
- Date: Sat, 13 Jan 2024 17:57:24 GMT
- Title: Quantum error mitigation in the regime of high noise using deep neural
network: Trotterized dynamics
- Authors: A. A. Zhukov, W. V. Pogosov
- Abstract summary: We address a learning-based quantum error mitigation method, which utilizes deep neural network applied at the postprocessing stage.
We concentrate on the simulation of Trotterized dynamics of 2D spin lattice in the regime of high noise, when expectation values of bounded traceless observables are strongly suppressed.
- Score: 0.0
- License: http://arxiv.org/licenses/nonexclusive-distrib/1.0/
- Abstract: We address a learning-based quantum error mitigation method, which utilizes
deep neural network applied at the postprocessing stage, and study its
performance in presence of different types of quantum noises. We concentrate on
the simulation of Trotterized dynamics of 2D spin lattice in the regime of high
noise, when expectation values of bounded traceless observables are strongly
suppressed. By using numerical simulations, we demonstrate a dramatic
improvement of data quality for both local weight-1 and weight-2 observables
for the depolarizing and inhomogeneous Pauli channels. At the same time, the
effect of coherent $ZZ$ crosstalks is not mitigated, so that in practise
crosstalks should be at first converted into incoherent errors by randomized
compiling.
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