DocumentCode
57477
Title
Asymptotic Performance of Energy Detector in Fading and Diversity Reception
Author
Sharma Banjade, Vesh Raj ; Tellambura, Chintha ; Hai Jiang
Author_Institution
Dept. of Electr. & Comput. Eng., Univ. of Alberta, Edmonton, AB, Canada
Volume
63
Issue
6
fYear
2015
fDate
Jun-15
Firstpage
2031
Lastpage
2043
Abstract
Missed-detection probability expressions for energy detectors often involve infinite series and do not provide quick insights into the effects of operating conditions. To overcome these limitations, we develop novel asymptotic analyses by proposing an approximate probability density function (PDF) of a random variable β, which, in general, can characterize fading channels in diverse operating conditions. The coefficients of the proposed approximate PDF of β are obtained by matching the coefficients of the approximate PDF´s series expansion (or coefficients of the approximate PDF´s moment generating function (MGF)) with those of the exact PDF (or MGF) of β. By using the proposed approximation, a unified closed-form asymptotic missed-detection probability is derived. Its usefulness is then demonstrated for fading channels without and with antenna diversity, for cooperative detection, and in co-channel interference. For each case, the sensing gain, which reveals the effect of the operating conditions on the detection performance, is determined explicitly. Furthermore, the asymptotic complementary area under the receiver operating characteristic curve, an alternative performance metric, is derived, and found to reveal the sensing gain. Numerical results verify the accuracy of our derived asymptotic expressions over a wider signal-to-noise ratio (SNR) range compared to the existing asymptotic solution, which is accurate only for high SNRs.
Keywords
antennas; approximation theory; cochannel interference; cooperative communication; diversity reception; fading channels; probability; random processes; MGF; PDF; SNR; antenna diversity; approximate probability density function; cochannel interference; cooperative detection; diversity reception; energy detector; fading channel; missed-detection probability expression; moment generating function; signal-to-noise ratio; unified closed-form asymptotic performance; Accuracy; Approximation methods; Fading; Gain; Probability density function; Sensors; Signal to noise ratio; Diversity combining; energy detector; fading; false alarm probability; missed-detection probability; moment generating function;
fLanguage
English
Journal_Title
Communications, IEEE Transactions on
Publisher
ieee
ISSN
0090-6778
Type
jour
DOI
10.1109/TCOMM.2015.2431259
Filename
7104109
Link To Document