DocumentCode
3183637
Title
Towards the classical communication complexity of entanglement distillation protocols with incomplete information
Author
Ambainis, Andris ; Yang, Ke
fYear
2004
fDate
21-24 June 2004
Firstpage
305
Lastpage
319
Abstract
Entanglement is an essential resource for quantum communication and quantum computation, similar to shared random bits in the classical world. Entanglement distillation extracts nearly-perfect entanglement from imperfect entangled state. The classical communication complexity of these protocols is the minimal amount of classical information that needs to be exchanged for the conversion. In this paper, we focus on the communication complexity of protocols that operate with incomplete information, i.e., where the inputs are mixed states and/or prepared adversarially. We consider three models of imperfect entanglement, namely, the bounded measurement model, the depolarization model, and the fidelity model. We describe these models as well as the motivations for studying them. For the bounded measurement model and the depolarization model, we prove tight and almost-tight bounds on the output quality of non-interactive protocols. For the fidelity model, we prove a lower bound that matches the upper bound given by Ambainis et al., and thus completely characterizes communication complexity of entanglement distillation protocols for this model. Our result also suggests the optimality of the BB84 protocol in terms of communication complexity. We emphasize that although some of the results appear intuitively straightforward, their proofs are not. In fact, two novel techniques are developed for proving these results. We believe that these techniques are of independent interests, too.
Keywords
communication complexity; protocols; quantum communication; quantum computing; quantum entanglement; BB84 protocol; bounded measurement model; communication complexity; depolarization model; entanglement distillation protocols; fidelity model; noninteractive protocols; quantum computation; quantum entanglement; Complexity theory; Data mining; Error correction codes; Information theory; Paramagnetic resonance; Protocols; Quantum computing; Quantum entanglement; Quantum mechanics; Teleportation;
fLanguage
English
Publisher
ieee
Conference_Titel
Computational Complexity, 2004. Proceedings. 19th IEEE Annual Conference on
ISSN
1093-0159
Print_ISBN
0-7695-2120-7
Type
conf
DOI
10.1109/CCC.2004.1313853
Filename
1313853
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