On the error probability of linearly modulated signals on Rayleigh frequency-flat fading channels

Consideration is given to optimal detection of linearly modulated signals subject to multiplicative Rayleigh-distributed distortion and additive white Gaussian noise. For coherent detection, regenerated amplitude and phase references are employed at the receiver to compensate for amplitude and phase...

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Published inIEEE transactions on communications Vol. 38; no. 11; pp. 1966 - 1970
Main Authors Aghamohammadi, A., Meyr, H.
Format Journal Article
LanguageEnglish
Published New York, NY IEEE 01.11.1990
Institute of Electrical and Electronics Engineers
Subjects
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ISSN0090-6778
DOI10.1109/26.61478

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Abstract Consideration is given to optimal detection of linearly modulated signals subject to multiplicative Rayleigh-distributed distortion and additive white Gaussian noise. For coherent detection, regenerated amplitude and phase references are employed at the receiver to compensate for amplitude and phase deviations from the correct values. A system model is formulated under the assumption of perfect symbol timing and in the absence of intersymbol interference, producing a final additive noise term, applied just before the detection, which contains the effects of the original additive and multiplicative distortions and of the errors in the phase and amplitude references. By determining the probability density function of this final noise term for arbitrary types of linear modulation, it is possible to perform exact calculations of error probabilities.< >
AbstractList Consideration is given to optimal detection of linearly modulated signals subject to multiplicative Rayleigh-distributed distortion and additive white Gaussian noise. For coherent detection, regenerated amplitude and phase references are employed at the receiver to compensate for amplitude and phase deviations from the correct values. A system model is formulated under the assumption of perfect symbol timing and in the absence of intersymbol interference, producing a final additive noise term, applied just before the detection, which contains the effects of the original additive and multiplicative distortions and of the errors in the phase and amplitude references. By determining the probability density function of this final noise term for arbitrary types of linear modulation, it is possible to perform exact calculations of error probabilities
Consideration is given to optimal detection of linearly modulated signals subject to multiplicative Rayleigh-distributed distortion and additive white Gaussian noise. For coherent detection, regenerated amplitude and phase references are employed at the receiver to compensate for amplitude and phase deviations from the correct values. A system model is formulated under the assumption of perfect symbol timing and in the absence of intersymbol interference, producing a final additive noise term, applied just before the detection, which contains the effects of the original additive and multiplicative distortions and of the errors in the phase and amplitude references. By determining the probability density function of this final noise term for arbitrary types of linear modulation, it is possible to perform exact calculations of error probabilities.< >
Author Aghamohammadi, A.
Meyr, H.
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Cites_doi 10.1109/VETEC.1989.40139
10.1109/26.68273
10.1109/VETEC.1988.195404
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Keywords Phase
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Snippet Consideration is given to optimal detection of linearly modulated signals subject to multiplicative Rayleigh-distributed distortion and additive white Gaussian...
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StartPage 1966
SubjectTerms Additive noise
Applied sciences
Baseband
Chirp modulation
Distortion
Error probability
Exact sciences and technology
Fading
Intersymbol interference
Matched filters
Phase detection
Systems, networks and services of telecommunications
Telecommunications
Telecommunications and information theory
Timing
Title On the error probability of linearly modulated signals on Rayleigh frequency-flat fading channels
URI https://ieeexplore.ieee.org/document/61478
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Volume 38
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