Modulation Classification via Subspace Detection in MIMO Systems

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Institute of Electrical and Electronics Engineers Inc.

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The problem of efficient modulation classification (MC) in multiple-input multiple-output systems is considered. Per-layer likelihood-based MC is proposed by employing subspace decomposition to partially decouple the transmitted streams. When detecting the modulation type of the stream of interest, a dense constellation is assumed on all remaining streams. The proposed classifier outperforms existing MC schemes at a lower complexity cost, and can be efficiently implemented in the context of joint MC and subspace data detection. © 1997-2012 IEEE.

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Adaptive modulation, Mimo, Modulation classification, Subspace detection, Channel estimation, Communication channels (information theory), Modulation, Signal detection, Data detection, Lower complexity, Modulation types, Multiple input multiple output system, Subspace decomposition, Mimo systems

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