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Energy-efficient beam coordination strategies with rate-dependent processing power

Tervo, Oskari; Tölli, Antti; Juntti, Markku; Tran, Le-Nam (2017-07-17)

 
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URL:
https://doi.org/10.1109/TSP.2017.2728501

Tervo, Oskari
Tölli, Antti
Juntti, Markku
Tran, Le-Nam
Institute of Electrical and Electronics Engineers
17.07.2017

O. Tervo, A. Tölli, M. Juntti and L. Tran, "Energy-Efficient Beam Coordination Strategies With Rate-Dependent Processing Power," in IEEE Transactions on Signal Processing, vol. 65, no. 22, pp. 6097-6112, 15 Nov.15, 2017. doi: 10.1109/TSP.2017.2728501

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doi:https://doi.org/10.1109/TSP.2017.2728501
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Julkaisun pysyvä osoite on
https://urn.fi/URN:NBN:fi-fe2018080233250
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Abstract

This paper proposes energy-efficient coordinated beamforming strategies for multicell multiuser multiple-input single-output system. We consider a practical power consumption model, where part of the consumed power depends on the base station or user specific data rates due to coding, decoding, and backhaul. This is different from the existing approaches where the base station power consumption has been assumed to be a convex or linear function of the transmit powers. Two optimization criteria are considered, namely network energy efficiency maximization and weighted sum energy efficiency maximization. We develop successive convex approximation-based algorithms to tackle these difficult nonconvex problems. We further propose decentralized implementations for the considered problems, in which base stations perform parallel and distributed computation based on local channel state information and limited backhaul information exchange. The decentralized approaches admit closed-form solutions and can be implemented without invoking a generic external convex solver. We also show an example of the pilot contamination effect on the energy efficiency using a heuristic pilot allocation strategy. The numerical results are provided to demonstrate that the rate dependent power consumption has a large impact on the system energy efficiency, and, thus, has to be taken into account when devising energy-efficient transmission strategies. The significant gains of the proposed algorithms over the conventional low-complexity beamforming algorithms are also illustrated.

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