DocumentCode
653172
Title
Dynamic Adjustment of the Chaos-Based Security in Real-Time Energy Harvesting Sensors
Author
Farajallah, M. ; El Assad, Safwan ; Chetto, Maryline
Author_Institution
IETR, Univ. of Nantes Nantes, Nantes, France
fYear
2013
fDate
20-23 Aug. 2013
Firstpage
282
Lastpage
289
Abstract
Wireless Sensor Networks (WSNs) are a growing field of research since they are used in many applications. Nevertheless, they are subject to many requirements such as real-time constraints, energy limitations, and security requirements for the communications. Energy Harvesting is a new paradigm in WSNs: sensor nodes are powered by energy harvested from the ambient, rather than by non-rechargeable batteries which permits a potentially perpetual operation. However, energy harvesting poses new challenges in the design of WSNs, in that energy availability fluctuates over the time. In this paper, we investigate the following fundamental question: how should the harvested energy be managed to guarantee data security in all circumstances? Our contributions in this paper are twofold: First, we propose the Deadline Mechanism to dynamically cope with energy shortage and guarantee the highest possible quality of protection by the use of different encryption algorithms. Second, we design a new chaos based cryptosystem suitable for WSNs. Indeed, the proposed encryption/decryption scheme is robust against all known attacks. Experiments show that it is at least 7 times faster than the AES algorithm and also, faster than many chaos based cryptosystems of the literature. Our objective is to identify low-complexity policies that achieve close-to-optimal performance, in terms of maximizing the average long-term importance of the reported data.
Keywords
data privacy; electric sensing devices; energy harvesting; wireless sensor networks; AES algorithm; WSN; chaos based cryptosystem; chaos-based security; data security; encryption-decryption scheme; nonrechargeable battery; protection quality; real-time energy harvesting sensor; wireless sensor network; Conferences; Internet; Social network services; Quality of Service; Real-time; chaos based crypto-system; information security; reliability; scheduling; secure transactions;
fLanguage
English
Publisher
ieee
Conference_Titel
Green Computing and Communications (GreenCom), 2013 IEEE and Internet of Things (iThings/CPSCom), IEEE International Conference on and IEEE Cyber, Physical and Social Computing
Conference_Location
Beijing
Type
conf
DOI
10.1109/GreenCom-iThings-CPSCom.2013.65
Filename
6682079
Link To Document