Quantum one-time programs


Autoria(s): Broadbent, Anne; Gutoski, Gus; Stebila, Douglas
Contribuinte(s)

Canetti, R.

Garay, J.

Data(s)

01/08/2013

Resumo

A one-time program is a hypothetical device by which a user may evaluate a circuit on exactly one input of his choice, before the device self-destructs. One-time programs cannot be achieved by software alone, as any software can be copied and re-run. However, it is known that every circuit can be compiled into a one-time program using a very basic hypothetical hardware device called a one-time memory. At first glance it may seem that quantum information, which cannot be copied, might also allow for one-time programs. But it is not hard to see that this intuition is false: one-time programs for classical or quantum circuits based solely on quantum information do not exist, even with computational assumptions. This observation raises the question, "what assumptions are required to achieve one-time programs for quantum circuits?" Our main result is that any quantum circuit can be compiled into a one-time program assuming only the same basic one-time memory devices used for classical circuits. Moreover, these quantum one-time programs achieve statistical universal composability (UC-security) against any malicious user. Our construction employs methods for computation on authenticated quantum data, and we present a new quantum authentication scheme called the trap scheme for this purpose. As a corollary, we establish UC-security of a recent protocol for delegated quantum computation.

Formato

application/pdf

Identificador

http://eprints.qut.edu.au/62024/

Publicador

Springer-Verlag

Relação

http://eprints.qut.edu.au/62024/1/BGS13.pdf

DOI:10.1007/978-3-642-40084-1_20

Broadbent, Anne, Gutoski, Gus, & Stebila, Douglas (2013) Quantum one-time programs. Lecture Notes in Computer Science [Advances in Cryptology - CRYPTO 2013: 33rd Annual Cryptology Conference, Santa Barbara, CA, USA, August 18-22, 2013. Proceedings, Part II], 8043, pp. 344-360.

Direitos

Copyright 2013 IACR

This is the author-version of the work. Conference proceedings published, by Springer Verlag, will be available via http://www.springer.de/comp/lncs/

Fonte

School of Electrical Engineering & Computer Science; Institute for Future Environments; Science & Engineering Faculty

Palavras-Chave #020603 Quantum Information Computation and Communication #080299 Computation Theory and Mathematics not elsewhere classified #080402 Data Encryption #quantum cryptography #one-time programs
Tipo

Journal Article