Phys. Rev. A 59, 4249 - 4254 (1999)

Distributed quantum computation over noisy channels

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J. I. Cirac1, A. K. Ekert2, S. F. Huelga3 *, and C. Macchiavello4
1Institut für Theoretische Physik, Universität Innsbruck, Technikerstrasse 25, A-6020 Innsbruck, Austria
2Department of Physics, Clarendon Laboratory, University of Oxford, Oxford OX1 3PU, United Kingdom
3Optics Section, The Blackett Laboratory, Imperial College, London SW7 2BZ, United Kingdom
4Dipartimento di Fisica “A. Volta” and INFM–Unità di Pavia, Via Bassi 6, 27100 Pavia, Italy

Received 12 January 1999

We analyze the use of entangled states to perform quantum computations nonlocally among distant nodes in a quantum network. The complexity associated with the generation of multiparticle entangled states is quantified in terms of the concept of global cost. This parameter allows us to compare the use of physical resources in different schemes. We show that, for ideal channels and for a sufficiently large number of nodes, the use of maximally entangled states is advantageous over uncorrelated ones. For noisy channels, one has to use entanglement purification procedures in order to create entangled states of high fidelity. We show that under certain circumstances a quantum network supplied with a maximally entangled input still yields a smaller global cost, provided that n belongs to a given interval n∈[nmin,nmax]. The values of nmin and nmax crucially depend on the purification protocols used to establish the n processor entangled states, as well as on the presence of decoherence processes during the computation. The phase estimation problem has been used to illustrate this fact.


©1999 The American Physical Society

URL: http://link.aps.org/abstract/PRA/v59/p4249
DOI: 10.1103/PhysRevA.59.4249
PACS: 03.67.Lx, 05.40.-a, 89.70.+c

* Permanent address: Departamento de Física, Universidad de Oviedo, Calvo Sotelo s/n 33007, Oviedo, Spain.

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