DocumentCode :
672658
Title :
Voronoi cell geometry based dynamic Fractional Frequency Reuse for OFDMA cellular networks
Author :
Ullah, Rahat ; Fisal, Norsheila ; Safdar, Hashim ; Maqbool, Wajahat ; Khalid, Zubair ; Khan, Adnan Shahid
Author_Institution :
Center of Excellence for Telecommun. Technol., Univ. Teknol. Malaysia (UTM), Skudai, Malaysia
fYear :
2013
fDate :
8-10 Oct. 2013
Firstpage :
435
Lastpage :
440
Abstract :
Interference Management (IM) is one of the major challenges of next generation wireless communication. Fractional Frequency Reuse (FFR) has been acknowledged as an efficient IM technique, which offers significant capacity enhancement and improve cell edge coverage with low complexity. In literature, FFR has been analyzed mostly with cellular networks described by Hexagon Grid Model, which is neither tractable nor scalable to the dense deployment of next generation wireless networks. Moreover, the perfect geometry based grid model tends to overestimate the system performance and not able to reflect the reality. In this paper, we use the stochastic geometry approach, FFR is analyzed with cellular network modeled by homogeneous Poisson Point Process (PPP). A dynamic frequency allocation scheme is proposed which take into account the randomness of the cell coverage area describe by Voronoi tessellation. It is shown that the proposed scheme outperforms the traditional fixed frequency allocation schemes in terms of per user capacity and capacity density.
Keywords :
cellular radio; computational geometry; frequency allocation; next generation networks; radiofrequency interference; stochastic processes; FFR; IM technique; OFDMA cellular network; PPP; Poisson point process; Voronoi cell geometry; Voronoi tessellation; cell edge coverage improvement; dynamic fractional frequency reuse; dynamic frequency allocation scheme; geometry based grid model; hexagon grid model; interference management; next generation wireless communication; stochastic geometry approach; Bandwidth; Interference; OFDM; Signal to noise ratio; Fractional Frequency Reuse; Inter-Cell Interference (ICI); Interference Management; Long Term Evolution (LTE); Poisson Point Process;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Signal and Image Processing Applications (ICSIPA), 2013 IEEE International Conference on
Conference_Location :
Melaka
Print_ISBN :
978-1-4799-0267-5
Type :
conf
DOI :
10.1109/ICSIPA.2013.6708046
Filename :
6708046
Link To Document :
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