English

Symmetrised Characterisation of Noisy Quantum Processes

Quantum Physics 2007-10-30 v1

Abstract

A major goal of developing high-precision control of many-body quantum systems is to realise their potential as quantum computers. Probably the most significant obstacle in this direction is the problem of "decoherence": the extreme fragility of quantum systems to environmental noise and other control limitations. The theory of fault-tolerant quantum error correction has shown that quantum computation is possible even in the presence of decoherence provided that the noise affecting the quantum system satisfies certain well-defined theoretical conditions. However, existing methods for noise characterisation have become intractable already for the systems that are controlled in today's labs. In this paper we introduce a technique based on symmetrisation that enables direct experimental characterisation of key properties of the decoherence affecting a multi-body quantum system. Our method reduces the number of experiments required by existing methods from exponential to polynomial in the number of subsystems. We demonstrate the application of this technique to the optimisation of control over nuclear spins in the solid state.

Keywords

Cite

@article{arxiv.0707.0685,
  title  = {Symmetrised Characterisation of Noisy Quantum Processes},
  author = {Joseph Emerson and Marcus Silva and Osama Moussa and Colm Ryan and Martin Laforest and Jonathan Baugh and David G. Cory and Raymond Laflamme},
  journal= {arXiv preprint arXiv:0707.0685},
  year   = {2007}
}

Comments

About 12 pages, 5 figures

R2 v1 2026-06-21T08:55:15.069Z