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Journal ArticleDOI

A simple and general parameterization quantifying performance in fading channels

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TLDR
The proposed analysis offers a simple and unifying approach to evaluating the performance of uncoded and (possibly space-time) coded transmissions over fading channels, and the method applies to almost all digital modulation schemes, including M-ary phaseshift keying, quadrature amplitude modulation, and frequency-shift keying with coherent or noncoherent detection.
Abstract
We quantify the performance of wireless transmissions over random fading channels at high signal-to-noise ratio (SNR). The performance criteria we consider are average probability of:error and outage probability. We show that as functions of the average SNR, they can both be characterized by two parameters: the diversity and coding gains. They both exhibit identical diversity orders, but their coding gains in decibels differ by a constant. The diversity and coding gains are found to depend on the behavior of-the random SNR's probability density function only at the origin, or equivalently, on the decaying order of the corresponding moment generating function (i.e., how fast the moment generating function goes to zero as its argument goes to infinity). Diversity and coding gains for diversity combining systems are expressed in terms of the diversity branches' individual diversity and coding gains, where the branches can come from any diversity technique such as space, time, frequency, or, multipath. The proposed analysis offers a simple and unifying approach to evaluating the performance of uncoded and (possibly space-time) coded transmissions over fading channels, and the method applies to almost all digital modulation schemes, including M-ary phaseshift keying, quadrature amplitude modulation, and frequency-shift keying with coherent or noncoherent detection.

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Journal ArticleDOI

Cross-Layer combining of adaptive Modulation and coding with truncated ARQ over wireless links

TL;DR: A cross-layer design which combines adaptive modulation and coding at the physical layer with a truncated automatic repeat request protocol at the data link layer is developed in order to maximize spectral efficiency under prescribed delay and error performance constraints.
Journal ArticleDOI

Symbol error probabilities for general Cooperative links

TL;DR: The average symbol error probability (SEP) for analog forwarding CD links is derived and it is proved that presence of diversity does not depend on the specific (e.g., Rayleigh) fading distribution.
Journal ArticleDOI

Practical physical layer network coding for two-way relay channels: performance analysis and comparison

TL;DR: This paper investigates the performance of practical physical-layer network coding (PNC) schemes for two-way relay channels, and indicates that the opportunistic relaying scheme can significantly improve system performance, compared to a single relay network.
Journal ArticleDOI

Modulation and demodulation for cooperative diversity in wireless systems

TL;DR: A general framework for maximum likelihood (ML) demodulation in cooperative wireless communication systems is developed and Demodulators with piecewise-linear combining are proposed as an accurate approximation of the nonlinear ML detectors for coherent and noncoherent decode-and-forward (DF).
BookDOI

Orthogonal Frequency Division Multiplexing for Wireless Communications

TL;DR: Orthogonal Frequency Division Multiplexing for Wireless Communications is an edited volume with contributions by leading authorities in the subject of OFDM, providing a comprehensive introduction of the theory and practice ofOFDM.
References
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Book

Digital Communications

Digital communications

J.E. Mazo
TL;DR: This month's guest columnist, Steve Bible, N7HPR, is completing a master’s degree in computer science at the Naval Postgraduate School in Monterey, California, and his research area closely follows his interest in amateur radio.
Journal ArticleDOI

Space-time block codes from orthogonal designs

TL;DR: A generalization of orthogonal designs is shown to provide space-time block codes for both real and complex constellations for any number of transmit antennas and it is shown that many of the codes presented here are optimal in this sense.
Journal ArticleDOI

Space-time codes for high data rate wireless communication: performance criterion and code construction

TL;DR: In this paper, the authors consider the design of channel codes for improving the data rate and/or the reliability of communications over fading channels using multiple transmit antennas and derive performance criteria for designing such codes under the assumption that the fading is slow and frequency nonselective.
Book

Digital Communication over Fading Channels

TL;DR: The book gives many numerical illustrations expressed in large collections of system performance curves, allowing the researchers or system designers to perform trade-off studies of the average bit error rate and symbol error rate.