DocumentCode :
3600853
Title :
Optimization of Radio and Computational Resources for Energy Efficiency in Latency-Constrained Application Offloading
Author :
Munoz, Olga ; Pascual-Iserte, Antonio ; Vidal, Josep
Author_Institution :
Dept. of Signal Theor. & Commun., Univ. Politec. de Catalunya, Barcelona, Spain
Volume :
64
Issue :
10
fYear :
2015
Firstpage :
4738
Lastpage :
4755
Abstract :
Providing femto access points (FAPs) with computational capabilities will allow (either total or partial) off-loading of highly demanding applications from smartphones to the so-called femto-cloud. Such off-loading promises to be beneficial in terms of battery savings at the mobile terminal (MT) and/or in latency reduction in the execution of applications. However, for this promise to become a reality, the energy and/or the time required for the communication process must be compensated by the energy and/or the time savings that result from the remote computation at the FAPs. For this problem, we provide in this paper a framework for the joint optimization of the radio and computational resource usage exploiting the tradeoff between energy consumption and latency. Multiple antennas are assumed to be available at the MT and the serving FAP. As a result of the optimization, the optimal communication strategy (e.g., transmission power, rate, and precoder) is obtained, as well as the optimal distribution of the computational load between the handset and the serving FAP. This paper also establishes the conditions under which total or no off-loading is optimal, determines which is the minimum affordable latency in the execution of the application, and analyzes, as a particular case, the minimization of the total consumed energy without latency constraints.
Keywords :
cloud computing; energy conservation; femtocellular radio; power aware computing; telecommunication power management; telecommunication terminals; FAPs; battery savings; computational resources; energy consumption; energy efficiency; femto access points; femto-cloud; latency reduction; latency-constrained application offloading; mobile terminal; multiple antennas; optimal communication strategy; radio optimization; smartphones; Computational modeling; Energy consumption; MIMO; Numerical models; Optimization; Power demand; Wireless communication; Battery savings; Femto-cloud; battery saving; energy efficiency; energy-latency trade-off; energy???latency tradeoff; femto-cloud; multi-input multi-output (MIMO); multiple-input multiple-output (MIMO); offloading;
fLanguage :
English
Journal_Title :
Vehicular Technology, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9545
Type :
jour
DOI :
10.1109/TVT.2014.2372852
Filename :
6963473
Link To Document :
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