DocumentCode :
34391
Title :
Energy-Efficient Uplink Resource Allocation in LTE Networks With M2M/H2H Co-Existence Under Statistical QoS Guarantees
Author :
Aijaz, Adnan ; Tshangini, Mati ; Nakhai, Mohammad Reza ; Xiaoli Chu ; Aghvami, Abdol-Hamid
Author_Institution :
Centre for Telecommun. Res., King´s Coll. London, London, UK
Volume :
62
Issue :
7
fYear :
2014
fDate :
Jul-14
Firstpage :
2353
Lastpage :
2365
Abstract :
Recently, energy efficiency in wireless networks has become an important objective. Aside from the growing proliferation of smartphones and other high-end devices in conventional human-to-human (H2H) communication, the introduction of machine-to-machine (M2M) communication or machine-type communication into cellular networks is another contributing factor. In this paper, we investigate quality-of-service (QoS)-driven energy-efficient design for the uplink of long term evolution (LTE) networks in M2M/H2H co-existence scenarios. We formulate the resource allocation problem as a maximization of effective capacity-based bits-per-joule capacity under statistical QoS provisioning. The specific constraints of single carrier frequency division multiple access (uplink air interface in LTE networks) pertaining to power and resource block allocation not only complicate the resource allocation problem, but also render the standard Lagrangian duality techniques inapplicable. We overcome the analytical and computational intractability by first transforming the original problem into a mixed integer programming (MIP) problem and then formulating its dual problem using the canonical duality theory. The proposed energy-efficient design is compared with the spectral efficient design along with round robin (RR) and best channel quality indicator (BCQI) algorithms. Numerical results, which are obtained using the invasive weed optimization (IWO) algorithm, show that the proposed energy-efficient uplink design not only outperforms other algorithms in terms of energy efficiency while satisfying the QoS requirements, but also performs closer to the optimal design.
Keywords :
Long Term Evolution; cellular radio; duality (mathematics); frequency division multiple access; integer programming; quality of service; resource allocation; smart phones; BCQI algorithms; FDMA; IWO algorithm; LTE networks; M2M-H2H coexistence; MIP problem; RR algorithms; analytical intractability; best channel quality indicator algorithms; canonical duality theory; cellular networks; computational intractability; effective capacity-based bits-per-joule capacity; energy-efficient uplink resource allocation; human-to-human communication; invasive weed optimization algorithm; long term evolution networks; machine-to-machine communication; machine-type communication; mixed integer programming problem; power allocation; quality-of-service design; resource block allocation; round robin algorithms; single carrier frequency division multiple access; smartphones; spectral efficient design; statistical QoS Guarantees; uplink air interface; Bandwidth; Delays; Optimization; Quality of service; Resource management; Signal to noise ratio; Uplink; LTE; M2M communication; QoS; SC-FDMA; canonical duality; energy efficiency; invasive weed optimization; resource allocation; uplink;
fLanguage :
English
Journal_Title :
Communications, IEEE Transactions on
Publisher :
ieee
ISSN :
0090-6778
Type :
jour
DOI :
10.1109/TCOMM.2014.2328338
Filename :
6824817
Link To Document :
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