TY - GEN
T1 - Two-way interference channels with jammers
AU - Jaggi, S.
AU - Langberg, M.
N1 - Publisher Copyright:
© 2017 IEEE.
PY - 2017/8/9
Y1 - 2017/8/9
N2 - Alice and Bob want to exchange information over an additive interference channel that also contains a malicious eavesdropper-jammer James who aims to disrupt this two-way communication. In the baseline model (motivated by wireless jamming scenarios), Alice and Bob transmit length-n q-arj encodings xA and xB respectively of their own messages. James observes the interference pattern z = xA + xB, and as a non-causal function of ζ and his knowledge of Alice and Bob's codebooks, chooses a jamming pattern s of power (Hamming weight) at most pn. Alice and Bob then both observe the interfered-jammed signal xA + xB + s, and aim to decode each others' messages despite the jamming pattern s. We demonstrate that in such a model, the fact of interference actually AIDS communication by allowing for communication to occur in each direction at a rate of 1 - Hq(p), i.e., the jammer can do no worse than act like 'random noise'.1 Interestingly, neither linear codes nor random codes (as 'usually' defined) achieve this performance - we thus define and analyze a new class of codes we call linearish codes that do. We then extend our results to general q-avy additive-error channels with asymmetric jamming patterns (with potentially different powers) to Alice and Bob, and also demonstrate how to simultaneously ensure information-theoretic secrecy of both Alice and Bob's messages from James.
AB - Alice and Bob want to exchange information over an additive interference channel that also contains a malicious eavesdropper-jammer James who aims to disrupt this two-way communication. In the baseline model (motivated by wireless jamming scenarios), Alice and Bob transmit length-n q-arj encodings xA and xB respectively of their own messages. James observes the interference pattern z = xA + xB, and as a non-causal function of ζ and his knowledge of Alice and Bob's codebooks, chooses a jamming pattern s of power (Hamming weight) at most pn. Alice and Bob then both observe the interfered-jammed signal xA + xB + s, and aim to decode each others' messages despite the jamming pattern s. We demonstrate that in such a model, the fact of interference actually AIDS communication by allowing for communication to occur in each direction at a rate of 1 - Hq(p), i.e., the jammer can do no worse than act like 'random noise'.1 Interestingly, neither linear codes nor random codes (as 'usually' defined) achieve this performance - we thus define and analyze a new class of codes we call linearish codes that do. We then extend our results to general q-avy additive-error channels with asymmetric jamming patterns (with potentially different powers) to Alice and Bob, and also demonstrate how to simultaneously ensure information-theoretic secrecy of both Alice and Bob's messages from James.
UR - https://www.scopus.com/pages/publications/85034087501
U2 - 10.1109/ISIT.2017.8006576
DO - 10.1109/ISIT.2017.8006576
M3 - Conference contribution
AN - SCOPUS:85034087501
T3 - IEEE International Symposium on Information Theory - Proceedings
SP - 491
EP - 495
BT - 2017 IEEE International Symposium on Information Theory, ISIT 2017
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2017 IEEE International Symposium on Information Theory, ISIT 2017
Y2 - 25 June 2017 through 30 June 2017
ER -