DocumentCode
633734
Title
Fully Distributed Certificate Authority Based on Polynomial over Elliptic Curve for MANET
Author
Alomari, Abdullah
Author_Institution
Fac. of Math. & Inf., Bucharest Univ., Bucharest, Romania
fYear
2013
fDate
1-3 July 2013
Firstpage
96
Lastpage
100
Abstract
A mobile ad hoc network (MANET) is a wireless communication network, which does not rely on any centralized management or a pre-existing infrastructure. Various certificate authorities (CAs) distributed over the network, each with a periodically updated share of the secrete key, is usually adopted. Thus many efforts have been made to adapt Certificate Authority´s (CA) tasks to the dynamic environments of MANETs and distribute the tasks of CA among MANET nodes. Elliptic Curve Cryptography (ECC) is a cryptographic technique prominent suited for small devices, like those used in wireless communications, and is gaining momentum. The main advantage of ECC versus RSA is that for the same level of security it requires a much shorter key length. The purpose of this work is to design and implement a fully certificate authority based on polynomial over elliptic curve, based on trust graphs and threshold cryptography, which though has better cryptography in nature. The security is based on the elliptic curve discrete logarithm problem which aimed to increase the authentication and the security in MANETs.
Keywords
mobile ad hoc networks; polynomials; public key cryptography; telecommunication network management; telecommunication security; CA task; ECC technique; MANET; RSA; certificate authority task; dynamic environment; elliptic curve cryptography technique; elliptic curve discrete logarithm problem; fully certificate authority; fully distributed certificate authority; mobile ad hoc network; periodically updated share; polynomial; secret key; shorter key length; small device; threshold cryptography; trust graph; wireless communication network; Elliptic curves; Mobile ad hoc networks; Polynomials; Public key; MANET; certificate authorities; elliptic curve cryptography;
fLanguage
English
Publisher
ieee
Conference_Titel
Software Engineering, Artificial Intelligence, Networking and Parallel/Distributed Computing (SNPD), 2013 14th ACIS International Conference on
Conference_Location
Honolulu, HI
Type
conf
DOI
10.1109/SNPD.2013.53
Filename
6598451
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