Title :
Classical-quantum arbitrarily varying wiretap channel—A capacity formula with Ahlswede Dichotomy—Resources
Author :
Boche, Holger ; Minglai Cai ; Deppe, Carsten
Author_Institution :
Lehrstuhl fur Theor. Informationstechnik, Tech. Univ. Munchen, Munich, Germany
fDate :
June 29 2014-July 4 2014
Abstract :
We establish the Ahlswede Dichotomy for arbitrarily varying classical-quantum wiretap channels, i.e., either the deterministic secrecy capacity of an arbitrarily varying classical-quantum wiretap channel is zero, or it equals its randomness assisted secrecy capacity. We analyze the secrecy capacity of arbitrarily varying classical-quantum wiretap channels when the sender and the receiver use various resources. It turns out that having randomness, common randomness, and correlation as resources are very helpful for achieving a positive deterministic secrecy capacity of arbitrarily varying classical-quantum wiretap channels. We prove the phenomenon “super-activation” for arbitrarily varying classical-quantum wiretap channels, i.e., two arbitrarily varying classical-quantum wiretap channels, both with zero deterministic secrecy capacity, if used together allow perfect secure transmission.
Keywords :
quantum communication; telecommunication channels; telecommunication security; Ahlswede dichotomy; capacity formula; classical-quantum arbitrarily varying wiretap channels; quantum communication systems; randomness assisted secrecy capacity; zero deterministic secrecy capacity; Correlation; Information theory; Law; Quantum entanglement; Receivers;
Conference_Titel :
Information Theory (ISIT), 2014 IEEE International Symposium on
Conference_Location :
Honolulu, HI
DOI :
10.1109/ISIT.2014.6874812