Title :
Secure Multiparty Quantum Computation with (Only) a Strict Honest Majority
Author :
Ben-Or, Michael ; Crépeau, Claude ; Gottesman, Daniel ; Hassidim, Avinatan ; Smith, Adam
Author_Institution :
Hebrew Univ., Jerusalem
Abstract :
Secret sharing and multiparty computation (also called "secure function evaluation") are fundamental primitives in modern cryptography, allowing a group of mutually distrustful players to perform correct, distributed computations under the sole assumption that some number of them will follow the protocol honestly. This paper investigates how much trust is necessary $that is, how many players must remain honest - in order for distributed quantum computations to be possible. We present a verifiable quantum secret sharing (VQSS) protocol, and a general secure multiparty quantum computation (MPQC) protocol, which can tolerate any cheaters among n players. Previous protocols for these tasks tolerated lfloor (n - 1)/4 rfloor and lfloor (n - 1)/6 rfloor cheaters, respectively. The threshold we achieve is tight - even in the classical case, "fair" multiparty computation is not possible if any set of n/2 players can cheat. Our protocols rely on approximate quantum error-correcting codes, which can tolerate a larger fraction of errors than traditional, exact codes. We introduce new families of authentication schemes and approximate codes tailored to the needs of our protocols, as well as new state purification techniques along the lines of those used in fault-tolerant quantum circuits
Keywords :
error correction codes; protocols; quantum computing; quantum cryptography; approximate quantum error-correcting codes; authentication schemes; cryptography; distributed quantum computations; fault-tolerant quantum circuits; mutually distrustful players; secure multiparty quantum computation protocol; strict honest majority; verifiable quantum secret sharing protocol; Authentication; Circuits; Cryptographic protocols; Cryptography; Distributed computing; Error correction codes; Fault tolerance; Performance evaluation; Purification; Quantum computing;
Conference_Titel :
Foundations of Computer Science, 2006. FOCS '06. 47th Annual IEEE Symposium on
Conference_Location :
Berkeley, CA
Print_ISBN :
0-7695-2720-5
DOI :
10.1109/FOCS.2006.68