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Training-Based Antenna Selection for per Minimization: A POMDP Approach

  • Indian Institute of Science
  • Naval Physical and Oceanographic Laboratory
  • National University of Singapore

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

Résumé

This paper considers the problem of receive antenna selection (AS) in a multiple-antenna communication system having a single radio-frequency (RF) chain. The AS decisions are based on noisy channel estimates obtained using known pilot symbols embedded in the data packets. The goal here is to minimize the average packet error rate (PER) by exploiting the known temporal correlation of the channel. As the underlying channels are only partially observed using the pilot symbols, the problem of AS for PER minimization is cast into a partially observable Markov decision process (POMDP) framework. Under mild assumptions, the optimality of a myopic policy is established for the two-state channel case. Moreover, two heuristic AS schemes are proposed based on a weighted combination of the estimated channel states on the different antennas. These schemes utilize the continuous-valued received pilot symbols to make the AS decisions, and are shown to offer performance comparable to the POMDP approach, which requires one to quantize the channel and observations to a finite set of states. The performance improvement offered by the POMDP solution and the proposed heuristic solutions relative to existing AS training-based approaches is illustrated using Monte Carlo simulations.

langue originaleAnglais
Numéro d'article7155517
Pages (de - à)3247-3260
Nombre de pages14
journalIEEE Transactions on Communications
Volume63
Numéro de publication9
Les DOIs
étatPublié - 1 sept. 2015

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