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Experimental Unconditionally Secure Bit Commitment

Authors :
Dong-Dong Li
Ze-Hong Lin
Teng-Yun Chen
Ke Cui
Hong-fei Zhang
Yang Liu
Yong Zhao
Sheng-Kai Liao
Yu-Huai Li
Yuan Cao
Cheng-Zhi Peng
Jian-Wei Pan
Jian Wang
Adán Cabello
Marcos Curty
Qi-Chao Sun
Qiang Zhang
Source :
Physical Review Letters. 112
Publication Year :
2014
Publisher :
American Physical Society (APS), 2014.

Abstract

Bit commitment is a fundamental cryptographic task that guarantees a secure commitment between two mutually mistrustful parties and is a building block for many cryptographic primitives, including coin tossing, zero-knowledge proofs, oblivious transfer and secure two-party computation. Unconditionally secure bit commitment was thought to be impossible until recent theoretical protocols that combine quantum mechanics and relativity were shown to elude previous impossibility proofs. Here we implement such a bit commitment protocol. In the experiment, the committer performs quantum measurements using two quantum key distribution systems and the results are transmitted via free-space optical communication to two agents separated with more than 20 km. The security of the protocol relies on the properties of quantum information and relativity theory. We show that, in each run of the experiment, a bit is successfully committed with less than 5.68*10^-2 cheating probability. Our result demonstrates unconditionally secure bit commitment and the experimental feasibility of relativistic quantum communication.<br />15 pages, 2 figures

Details

ISSN :
10797114 and 00319007
Volume :
112
Database :
OpenAIRE
Journal :
Physical Review Letters
Accession number :
edsair.doi.dedup.....5db614d1012688d445b2dc7992d1de3a
Full Text :
https://doi.org/10.1103/physrevlett.112.010504