DocumentCode :
1772649
Title :
Enhancing primary user detection through radio frequency fingerprint
Author :
Sebgui, Marouane ; Bah, Sliman ; Berrado, Abdelaziz ; El Graini, Belhaj
Author_Institution :
LEC Lab., Mohammed V Univ., Rabat, Morocco
fYear :
2014
fDate :
28-30 May 2014
Firstpage :
160
Lastpage :
164
Abstract :
Radio Frequency Fingerprint (RFF) is a technology that allows a unique identification of transmitters. RFF is based on the transient phase of a transmitted signal and allows device identification at the physical level. This paper proposes to use this technology to identify the primary user in the cognitive radio context. Indeed, it presents a novel transceiver architecture based on a dedicated sensing unit. Furthermore, we propose a decision making process based on a supervised learning classifier to decide if a given RFF belongs to a primary user or not. We use wavelets signal decomposition to extract RFF profiles in order to achieve a high level of sensing accuracy.
Keywords :
cognitive radio; decision making; learning (artificial intelligence); pattern classification; radio transceivers; signal processing; telecommunication computing; wavelet transforms; wireless sensor networks; RFF profile extraction; cognitive radio context; decision making process; device identification; primary user detection enhancement; primary user identification; radio frequency fingerprint; sensing unit; supervised learning classifier; transceiver architecture; transmitter identification; wavelets signal decomposition; Cognitive radio; Databases; Feature extraction; Fingerprint recognition; Sensors; Transceivers; Transient analysis; Cognitive Radio; Cooperative Spectrum Sensing; Direct Wavelets Decomposition; Radio Frequency Fingerptint;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Next Generation Networks and Services (NGNS), 2014 Fifth International Conference on
Conference_Location :
Casablanca
Print_ISBN :
978-1-4799-6608-0
Type :
conf
DOI :
10.1109/NGNS.2014.6990246
Filename :
6990246
Link To Document :
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