DocumentCode :
2323296
Title :
Energy efficient coordinated beamforming for multi-cell MISO systems
Author :
Yi Huang ; Jie Xu ; Ling Qiu
Author_Institution :
Univ. of Sci. & Technol. of China (USTC), Hefei, China
fYear :
2013
fDate :
9-13 Dec. 2013
Firstpage :
2526
Lastpage :
2531
Abstract :
In this paper, we investigate the optimal energy efficient coordinated beamforming in multi-cell multiple-input single-output (MISO) systems with K multiple-antenna base stations (BS) and K single-antenna mobile stations (MS), where each BS sends information to its own intended MS with cooperatively designed transmit beamforming. We assume single user detection at the MS by treating the interference as noise. By taking into account a realistic power model at the BS, we characterize the Pareto boundary of the achievable energy efficiency (EE) region of the K links, where the EE of each link is defined as the achievable data rate at the MS divided by the total power consumption at the BS. Since the EE of each link is non-cancave (which is a non-concave function over an affine function), characterizing this boundary is difficult. To meet this challenge, we relate this multi-cell MISO system to cognitive radio (CR) MISO channels by applying the concept of interference temperature (IT), and accordingly transform the EE boundary characterization problem into a set of fractional concave programming problems. Then, we apply the fractional concave programming technique to solve these fractional concave problems, and correspondingly give a parametrization for the EE boundary in terms of IT levels. Based on this characterization, we further present a decentralized algorithm to implement the multi-cell coordinated beamforming, which is shown by simulations to achieve the EE Pareto boundary.
Keywords :
Pareto distribution; antenna arrays; array signal processing; cognitive radio; concave programming; radiofrequency interference; Pareto boundary; affine function; cognitive radio; fractional concave programming problems; interference temperature; multicell MISO systems; multicell coordinated beamforming; multiple antenna base stations; multiple-input single-output systems; nonconcave function; optimal energy efficient coordinated beamforming; power consumption; realistic power model; single antenna mobile stations; single user detection; Array signal processing; Interference; Noise; Optimization; Power demand; Programming; Vectors; Pareto boundary; coordinated beamforming; energy efficiency; multi-cell MISO systems;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Global Communications Conference (GLOBECOM), 2013 IEEE
Conference_Location :
Atlanta, GA
Type :
conf
DOI :
10.1109/GLOCOM.2013.6831454
Filename :
6831454
Link To Document :
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