DocumentCode
660057
Title
Optimum Uplink Power Control under Power and Interference Constraints
Author
Yuksekkaya, Baris ; Inaltekin, Hazer ; Toker, Cenk
Author_Institution
Dept. of Electr. & Electron. Eng., Hacettepe Univ., Ankara, Turkey
fYear
2013
fDate
2-5 Sept. 2013
Firstpage
1
Lastpage
5
Abstract
This paper considers optimum allocation of transmission powers in next generation networks. The proposed framework is general enough to cover both emerging heterogeneous network (HetNet) architectures and cognitive radio (CR) networks. There are two types of users in our model. Type 1 users (T1U) represent either femtocell users in a HetNet, or secondary users in a CR network. Type 2 users (T2U) represent either macrocell users in a HetNet, or primary users in a CR network. T1Us share the same frequency band with T2Us, and they form an uplink to their intended base station (i.e., either the femtocell base station or the secondary base station) while causing interference to T2Us. The optimum power allocation strategy maximizing the aggregate communication rate of T1Us is found under individual transmission power constraints and a total interference power constraint at T2Us. It is shown that the optimum power allocation exhibits a binary structure, which means links are either quot;onquot; or quot;offquot;, up to at most one exceptional fractional power level. Further, it is shown that T1Us transmitting at positive power correspond to the ones having better quot;jointquot; power and interference channel gains. Applications of these results are illustrated for well-known fading models such as Rayleigh, Rician-K, and Nakagami-m fading.
Keywords
Nakagami channels; Rayleigh channels; cognitive radio; fading channels; femtocellular radio; power transmission control; radio links; radiofrequency interference; CR networks; HetNet architectures; Nakagami-m fading; Rayleigh fading; Rician-K fading; cognitive radio; fading models; femtocell base station; femtocell users; heterogeneous network; interference constraints; interference power constraint; optimum allocation; optimum uplink power control; power constraints; power transmission; Fading; Interference channels; Interference constraints; Joints; Power control; Resource management;
fLanguage
English
Publisher
ieee
Conference_Titel
Vehicular Technology Conference (VTC Fall), 2013 IEEE 78th
Conference_Location
Las Vegas, NV
ISSN
1090-3038
Type
conf
DOI
10.1109/VTCFall.2013.6692337
Filename
6692337
Link To Document