DocumentCode
167057
Title
A new hardware quantum-based encryption algorithm
Author
Qawaqneh, Zakariya ; Elleithy, Khaled ; Alotaibi, B. ; Alotaibi, Mohammad
Author_Institution
Comput. Sci. & Eng. Dept., Univ. of Bridgeport, Bridgeport, CT, USA
fYear
2014
fDate
2-2 May 2014
Firstpage
1
Lastpage
5
Abstract
Cryptography is entering a new age since the first steps that have been made towards quantum computing, which also poses a threat to the classical cryptosystem in general. In this paper, we introduce a new novel encryption technique and algorithm to improve quantum cryptography. The aim of the suggested scheme is to generate a digital signature in quantum computing. An arbitrated digital signature is introduced instead of the directed digital signature to avoid the denial of sending the message from the sender and pretending that the sender´s private key was stolen or lost and the signature has been forged. The onetime pad operation that most quantum cryptography algorithms that have been proposed in the past is avoided to decrease the possibility of the channel eavesdropping. The presented algorithm in this paper uses quantum gates to do the encryption and decryption processes. In addition, new quantum gates are introduced, analyzed, and investigated in the encryption and decryption processes. The authors believe the gates that are used in the proposed algorithm improve the security for both classical and quantum computing. (Against)The proposed gates in the paper have plausible properties that position them as suitable candidates for encryption and decryption processes in quantum cryptography. To demonstrate the security features of the algorithm, it was simulated using MATLAB simulator, in particular through the Quack Quantum Library.
Keywords
digital signatures; quantum computing; quantum cryptography; quantum gates; Matlab simulator; Quack Quantum Library; arbitrated digital signature; channel eavesdropping; decryption process; encryption process; hardware quantum-based encryption algorithm; quantum computing; quantum cryptography improvement; quantum gates; sender private key; signature forging; Encryption; Logic gates; Protocols; Quantum computing; Quantum mechanics; algorithms; quantum; quantum cryptography; qubit key; secure communications;
fLanguage
English
Publisher
ieee
Conference_Titel
Systems, Applications and Technology Conference (LISAT), 2014 IEEE Long Island
Conference_Location
Farmingdale, NY
Type
conf
DOI
10.1109/LISAT.2014.6845201
Filename
6845201
Link To Document