A comprehensive framework for Double Spatial Modulation under imperfect channel state information

dc.contributor.authorG.D., G.S.
dc.contributor.authorKoila, K.
dc.contributor.authorRaghavendra, R.
dc.contributor.authorShripathi Acharya, U.
dc.date.accessioned2026-02-05T09:31:55Z
dc.date.issued2017
dc.description.abstractThe essential requirement for a 5G wireless communication system is the realization of energy efficient as well as spectrally efficient modulation schemes. Double Spatial Modulation (DSM) is a recently proposed high rate Index Modulation (IM) scheme, designed for use in Multiple Input Multiple Output (MIMO) wireless systems. The aim of this scheme is to increase the spectral efficiency of conventional Spatial Modulation (SM) systems while keeping the energy efficiency intact. In this paper, the impact of imperfect channel knowledge on the performance of DSM system under Rayleigh, Rician and Nakagami-m fading channels has been quantified. Later, a modified low complexity decoder for the DSM scheme has been designed using ordered block minimum mean square error (OB-MMSE) criterion. Its performance under varied fading environments have been quantified via Monte Carlo simulations. Finally, a closed form expression for the pairwise error probability (PEP) for a DSM scheme under conditions of perfect and imperfect channel state information has been derived. This is employed to calculate the upper bound on the average bit error probability (ABEP) over aforementioned fading channels. It is observed that, under perfect and imperfect channel conditions DSM outperforms all the other variants of SM by at least 2dB at an average bit error ratio (ABER) of 10?5. Tightness of the derived upper bound is illustrated by Monte Carlo simulation results. © 2017 Elsevier B.V.
dc.identifier.citationPhysical Communication, 2017, 25, , pp. 519-526
dc.identifier.issn18744907
dc.identifier.urihttps://doi.org/10.1016/j.phycom.2017.10.010
dc.identifier.urihttps://idr.nitk.ac.in/handle/123456789/25421
dc.publisherElsevier B.V.
dc.subjectBit error rate
dc.subjectBlock codes
dc.subjectChannel estimation
dc.subjectCommunication channels (information theory)
dc.subjectEnergy efficiency
dc.subjectErrors
dc.subjectFading channels
dc.subjectIntelligent systems
dc.subjectMean square error
dc.subjectMIMO systems
dc.subjectModulation
dc.subjectMonte Carlo methods
dc.subjectProbability
dc.subjectSignal receivers
dc.subjectTrellis codes
dc.subjectWireless telecommunication systems
dc.subjectAverage bit error probability
dc.subjectImperfect channel state information
dc.subjectIndex modulation
dc.subjectPerfect channel state information
dc.subjectSpatial modulations
dc.subjectChannel state information
dc.titleA comprehensive framework for Double Spatial Modulation under imperfect channel state information

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