DocumentCode :
939581
Title :
Practical error probability estimation for digital radio systems in the presence of interference and noise of finite crest factor, and prediction of residual error rate
Author :
Young, I. ; Water, G.
Author_Institution :
Hewlett-Packard Ltd., South Queensferry, UK
Volume :
134
Issue :
5
fYear :
1987
fDate :
8/1/1987 12:00:00 AM
Firstpage :
448
Lastpage :
453
Abstract :
The probability of incorrect reception of a transmitted bit under hostile propagation conditions is commonly estimated from bit error ratio measurements performed in the presence of additive white noise and interference. The paper stresses the effects of the finite crest factor of realisable noise sources on the theoretical error probability of digital radio systems. Formulas are presented for calculating this under given combinations of noise, interference and crest factor for common modulation schemes, and are suitable for simple numerical integration on desk-top calculators. Some implications for test equipment design are highlighted. The residual error rate of digital radio systems is so low that it is not practical to measure it directly. However, an estimate can be made by adding sinusoidal interference to produce the carrier/interference ratio (CIR) required to establish a specific error rate, dependent on the amount of residual noise present around the phase states in the constellation employed.
Keywords :
digital communication systems; electric noise measurement; error analysis; error statistics; radio systems; radiofrequency interference; random noise; CIR; carrier/interference ratio; digital radio systems; error probability estimation; error rate; finite crest factor; modulation schemes; noise; numerical integration; realisable noise sources; residual error rate; residual noise; sinusoidal interference; test equipment design;
fLanguage :
English
Journal_Title :
Communications, Radar and Signal Processing, IEE Proceedings F
Publisher :
iet
ISSN :
0143-7070
Type :
jour
DOI :
10.1049/ip-f-1.1987.0078
Filename :
4647250
Link To Document :
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