DocumentCode
2363125
Title
Outage and TIFR capacity of sensing enhanced spectrum sharing cognitive radio networks with missed detection protection constraints
Author
Stotas, Stergios ; Nallanathan, Arumugam
Author_Institution
Centre for Telecommun. Res., , King´´s Coll. London, London, UK
fYear
2012
fDate
10-15 June 2012
Firstpage
3493
Lastpage
3498
Abstract
Spectrum sharing has been considered an effective method of mitigating the spectrum scarcity in wireless communications by allowing the coexistence of both unlicensed and licensed devices in the same frequency bands, something which can be done by limiting the received interference power at the licensed user at an acceptable low level. In this paper, we study the outage and truncated channel inversion with fixed rate (TIFR) capacity of a sensing-enhanced spectrum sharing (SESS) cognitive radio system (CRS) under missed-detection interference power constraints for the protection of the primary users. In our analysis, we consider (i) average transmit power constraints, (ii) peak interference power constraints and (iii) average interference power constraints, and derive the power allocation strategy, as well as the TIFR and outage capacity for Nakagami-m fading channels. We provide numerical results which show that a SESS CRS can achieve improved outage and TIFR capacity compared to a conventional non-sensing spectrum sharing CRS.
Keywords
Nakagami channels; cognitive radio; radiofrequency interference; Nakagami-m fading channels; SESS CRS; TIFR capacity; average interference power constraints; average transmit power constraints; licensed devices; licensed user; missed-detection interference power constraints; nonsensing spectrum sharing; outage capacity; peak interference power constraints; power allocation strategy; primary users; sensing enhanced spectrum sharing cognitive radio system; spectrum scarcity mitigation; truncated channel inversion with fixed rate capacity; unlicensed devices; wireless communications; Cognitive radio; Interference; Nakagami distribution; Rayleigh channels; Receivers; Sensors;
fLanguage
English
Publisher
ieee
Conference_Titel
Communications (ICC), 2012 IEEE International Conference on
Conference_Location
Ottawa, ON
ISSN
1550-3607
Print_ISBN
978-1-4577-2052-9
Electronic_ISBN
1550-3607
Type
conf
DOI
10.1109/ICC.2012.6363700
Filename
6363700
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