DocumentCode :
75770
Title :
Lithe: Lightweight Secure CoAP for the Internet of Things
Author :
Raza, Shahid ; Shafagh, Hossein ; Hewage, Kasun ; Hummen, Rene ; Voigt, Thiemo
Author_Institution :
SICS Swedish ICT, Kista, Sweden
Volume :
13
Issue :
10
fYear :
2013
fDate :
Oct. 2013
Firstpage :
3711
Lastpage :
3720
Abstract :
The Internet of Things (IoT) enables a wide range of application scenarios with potentially critical actuating and sensing tasks, e.g., in the e-health domain. For communication at the application layer, resource-constrained devices are expected to employ the constrained application protocol (CoAP) that is currently being standardized at the Internet Engineering Task Force. To protect the transmission of sensitive information, secure CoAP mandates the use of datagram transport layer security (DTLS) as the underlying security protocol for authenticated and confidential communication. DTLS, however, was originally designed for comparably powerful devices that are interconnected via reliable, high-bandwidth links. In this paper, we present Lithe-an integration of DTLS and CoAP for the IoT. With Lithe, we additionally propose a novel DTLS header compression scheme that aims to significantly reduce the energy consumption by leveraging the 6LoWPAN standard. Most importantly, our proposed DTLS header compression scheme does not compromise the end-to-end security properties provided by DTLS. Simultaneously, it considerably reduces the number of transmitted bytes while maintaining DTLS standard compliance. We evaluate our approach based on a DTLS implementation for the Contiki operating system. Our evaluation results show significant gains in terms of packet size, energy consumption, processing time, and network-wide response times when compressed DTLS is enabled.
Keywords :
Internet of Things; operating systems (computers); personal area networks; protocols; security of data; 6LoWPAN standard; Contiki operating system; DTLS; Internet of Things; IoT; Lithe; authenticated confidential communication; constrained application protocol; datagram transport layer security; e-health domain; end-to-end security; lightweight secure CoAP; resource-constrained devices; Encoding; Internet; Payloads; Protocols; Security; Sensors; Standards; 6LoWPAN; CoAP; CoAPs; DTLS; IoT; security;
fLanguage :
English
Journal_Title :
Sensors Journal, IEEE
Publisher :
ieee
ISSN :
1530-437X
Type :
jour
DOI :
10.1109/JSEN.2013.2277656
Filename :
6576185
Link To Document :
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