DocumentCode
1761600
Title
On the Optimum Energy Efficiency for Flat-Fading Channels with Rate-dependent Circuit Power
Author
Tao Wang ; Vandendorpe, Luc
Author_Institution
Key Lab. of Specialty Fiber Opt. & Opt. Access Networks, Shanghai Univ., Shanghai, China
Volume
61
Issue
12
fYear
2013
fDate
41609
Firstpage
4910
Lastpage
4921
Abstract
This paper investigates the optimum energy efficiency (EE) and the corresponding spectral efficiency (SE) for a communication link operating over a flat-fading channel. The EE is evaluated by the total energy consumption for transmitting per message bit. Three channel cases are considered, namely static channel with channel state information available at transmitter (CSIT), fast-varying (FV) channel with channel distribution information available at transmitter (CDIT), and FV channel with CSIT. The link´s circuit power is modeled as ρ+κφ(R) Watt, where ρ>0 and κ≥0 are two constants and φ(R) is a general increasing and convex function of the transmission rate R≥0. For all the three channel cases, the tradeoff between the EE and SE is studied. It is shown that the EE improves strictly as the SE increases from 0 to the optimum SE, and then strictly degrades as the SE increases beyond the optimum SE. The impact of κ, ρ and other system parameters on the optimum EE and corresponding SE is investigated to obtain insight. Some of the important and interesting results for all the channel cases include: (1) when κ increases the SE corresponding to the optimum EE should keep unchanged if φ(R)=R, but reduced if φ(R) is strictly convex of R; (2) when the rate-independent circuit power ρ increases, the SE corresponding to the optimum EE has to be increased. A polynomial-complexity algorithm is developed with the bisection method to find the optimum SE. The insight is corroborated and the optimum EE for the three cases are compared by simulation results.
Keywords
data communication; energy conservation; fading channels; polynomial approximation; resource allocation; telecommunication links; CDIT; CSIT; channel distribution information available at transmitter; channel state information available at transmitter; communication link; fast varying channel; flat fading channels; optimum energy efficiency; polynomial complexity algorithm; rate dependent circuit power; rate independent circuit power; spectral efficiency; static channel; total energy consumption; Convex functions; Energy consumption; Integrated circuit modeling; Power demand; Simulation; Transmitters; Wireless communication; Energy efficiency; flat-fading channels; quasiconvexity; resource allocation; spectral efficiency;
fLanguage
English
Journal_Title
Communications, IEEE Transactions on
Publisher
ieee
ISSN
0090-6778
Type
jour
DOI
10.1109/TCOMM.2013.111013.130150
Filename
6668861
Link To Document