TY - GEN
T1 - Characterizing positive-rate secure multicast network coding with eavesdropping nodes
AU - Langberg, Michael
AU - Effros, Michelle
N1 - Publisher Copyright:
© 2024 IEEE.
PY - 2024
Y1 - 2024
N2 - Motivated by the study of multi-source multiterminal key-dissemination, here called "key-cast;"the work at hand presents a combinatorial characterization of when positiverate secure multicast network coding in the presence of eaves-dropping nodes is possible. In key-cast, introduced by the authors in [ITW2022], network nodes hold independent random bits, and one seeks a communication scheme that allows all terminal nodes to share a secret key K. We here address positive (albeit, arbitrarily small) rate key-cast under the security requirement that no single non-terminal network node can gain information about the shared key K; this scenario is useful in cryptographic settings. The work at hand studies key-dissemination protocols based on secure network coding and presents a combinatorial characterization of networks that support positive-rate multicast resilient to eavesdroppers that control individual network nodes. The secure-multicast capacity solution in the same setting is a known open problem.
AB - Motivated by the study of multi-source multiterminal key-dissemination, here called "key-cast;"the work at hand presents a combinatorial characterization of when positiverate secure multicast network coding in the presence of eaves-dropping nodes is possible. In key-cast, introduced by the authors in [ITW2022], network nodes hold independent random bits, and one seeks a communication scheme that allows all terminal nodes to share a secret key K. We here address positive (albeit, arbitrarily small) rate key-cast under the security requirement that no single non-terminal network node can gain information about the shared key K; this scenario is useful in cryptographic settings. The work at hand studies key-dissemination protocols based on secure network coding and presents a combinatorial characterization of networks that support positive-rate multicast resilient to eavesdroppers that control individual network nodes. The secure-multicast capacity solution in the same setting is a known open problem.
UR - https://www.scopus.com/pages/publications/85202819439
U2 - 10.1109/ISIT57864.2024.10619660
DO - 10.1109/ISIT57864.2024.10619660
M3 - Conference contribution
AN - SCOPUS:85202819439
T3 - IEEE International Symposium on Information Theory - Proceedings
SP - 1303
EP - 1308
BT - 2024 IEEE International Symposium on Information Theory, ISIT 2024 - Proceedings
PB - Institute of Electrical and Electronics Engineers Inc.
T2 - 2024 IEEE International Symposium on Information Theory, ISIT 2024
Y2 - 7 July 2024 through 12 July 2024
ER -