English

Efficient error characterization in Quantum Information Processing

Quantum Physics 2015-06-26 v1

Abstract

We describe how to use the fidelity decay as a tool to characterize the errors affecting a quantum information processor through a noise generator GτG_{\tau}. For weak noise, the initial decay rate of the fidelity proves to be a simple way to measure the magnitude of the different terms in GτG_{\tau}. When the generator has only terms associated with few-body couplings, our proposal is scalable. We present the explicit protocol for estimating the magnitude of the noise generators when the noise consists of only one and two-body terms, and describe a method for measuring the parameters of more general noise models. The protocol focuses on obtaining the magnitude with which these terms affect the system during a time step of length τ\tau; measurement of this information has critical implications for assesing the scalability of fault-tolerant quantum computation in any physical setup.

Keywords

Cite

@article{arxiv.quant-ph/0608246,
  title  = {Efficient error characterization in Quantum Information Processing},
  author = {Benjamin Lévi and Cecilia C. López and Joseph Emerson and D. G. Cory},
  journal= {arXiv preprint arXiv:quant-ph/0608246},
  year   = {2015}
}

Comments

11 pages, 9 figures