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January 1, 1999IEEE Journal on Selected Areas in Communications1,134 citations

Simplified processing for high spectral efficiency wireless communication employing multi-element arrays

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GFG.J. FoschiniGGG.D. GoldenRVReinaldo A. Valenzuela

Key Points

  • To develop and evaluate a simplified space-time processing architecture for multi-element antenna arrays that achieves high spectral efficiency in high-scattering wireless channels.
  • Mapped incoming bit streams into vectors of independently modulated equal bit-rate sub-streams transmitted simultaneously across identical frequency bands.
  • Employed a detection algorithm adapted from multiuser detection to resolve overlapping signal components in additive white Gaussian noise.
  • Evaluated theoretical limits and implemented a 1.9 GHz hardware testbed supporting up to 16 quadrature amplitude modulation transmitters and 16 receive antennas.
  • Achieved an uncoded theoretical spectral efficiency of 36 bit/s/Hz at 18 dB signal-to-noise ratio using 12 transmit and 16 receive antennas, assuming a 5% block error rate for 100 vector symbol bursts.
  • Compared the 36 bit/s/Hz spectral efficiency against an upper bound theoretical Shannon capacity of 71.1 bit/s/Hz under identical channel conditions.
  • Demonstrated that theoretically optimal architectures yield no more than approximately 40% additional capacity over this simplified architecture for large antenna counts.

Abstract

We investigate robust wireless communication in high-scattering propagation environments using multi-element antenna arrays (MEAs) at both transmit and receive sites. A simplified, but highly spectrally efficient space-time communication processing method is presented. The user's bit stream is mapped to a vector of independently modulated equal bit-rate signal components that are simultaneously transmitted in the same band. A detection algorithm similar to multiuser detection is employed to detect the signal components in white Gaussian noise (WGN). For a large number of antennas, a more efficient architecture can offer no more than about 40% more capacity than the simple architecture presented. A testbed that is now being completed operates at 1.9 GHz with up to 16 quadrature amplitude modulation (QAM) transmitters and 16 receive antennas. Under ideal operation at 18 dB signal-to-noise ratio (SNR), using 12 transmit antennas and 16 receive antennas (even with uncoded communication), the theoretical spectral efficiency is 36 bit/s/Hz, whereas the Shannon capacity is 71.1 bit/s/Hz. The 36 bits per vector symbol, which corresponds to over 200 billion constellation points, assumes a 5% block error rate (BLER) for 100 vector symbol bursts.

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Cite This Study

Foschini et al. (1999) studied this question.

synapsesocial.com/papers/6a08fe01a2bc65e38873b306https://doi.org/10.1109/49.806815
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