DocumentCode
77112
Title
Polar Codes for Degradable Quantum Channels
Author
Wilde, Mark M. ; Guha, Saikat
Author_Institution
Sch. of Comput. Sci., McGill Univ., Montreal, QC, Canada
Volume
59
Issue
7
fYear
2013
fDate
Jul-13
Firstpage
4718
Lastpage
4729
Abstract
Channel polarization is a phenomenon in which a particular recursive encoding induces a set of synthesized channels from many instances of a memoryless channel, such that a fraction of the synthesized channels becomes near perfect for data transmission and the other fraction becomes near useless for this task. Mahdavifar and Vardy have recently exploited this phenomenon to construct codes that achieve the symmetric private capacity for private data transmission over a degraded wiretap channel. In this paper, we build on their work and demonstrate how to construct quantum wiretap polar codes that achieve the symmetric private capacity of a degraded quantum wiretap channel with a classical eavesdropper. Due to the Schumacher-Westmoreland correspondence between quantum privacy and quantum coherence, we can construct quantum polar codes by operating these quantum wiretap polar codes in superposition, much like Devetak´s technique for demonstrating the achievability of the coherent information rate for quantum data transmission. Our scheme achieves the symmetric coherent information rate for quantum channels that are degradable with a classical environment. This condition on the environment may seem restrictive, but we show that many quantum channels satisfy this criterion, including amplitude damping channels, photon-detected jump channels, dephasing channels, erasure channels, and cloning channels. Our quantum polar coding scheme has the desirable properties of being channel-adapted and symmetric capacity-achieving along with having an efficient encoder, but we have not demonstrated that the decoding is efficient. Also, the scheme may require entanglement assistance, but we show that the rate of entanglement consumption vanishes in the limit of large blocklength if the channel is degradable with classical environment.
Keywords
block codes; channel capacity; channel coding; data communication; decoding; Devetak technique; Schumacher-Westmoreland; amplitude damping channel; channel polarization; cloning channel; decoding; degradable quantum channel code; dephasing channel; eavesdropper; erasure channel; memoryless channel; photon-detected jump channel; private quantum data transmission; quantum coherence; quantum privacy; quantum wiretap channel degradation; quantum wiretap polar code; recursive encoding; superposition code; symmetric coherent information rate; symmetric private capacity; synthesized channel; Decoding; Encoding; Photonics; Quantum mechanics; Receivers; Reliability; Security; Degradable quantum channels; quantum polar codes; symmetric coherent information; symmetric private information;
fLanguage
English
Journal_Title
Information Theory, IEEE Transactions on
Publisher
ieee
ISSN
0018-9448
Type
jour
DOI
10.1109/TIT.2013.2250575
Filename
6472318
Link To Document