DocumentCode
573267
Title
Pulse shaping for direct-sequence offset quadrature-spread UWB communication signals
Author
Landolsi, M.A.
Author_Institution
Electr. Eng. Dept., King Fahd Univ. of Pet. & Miner., Dhahran, Saudi Arabia
fYear
2012
fDate
2-5 July 2012
Firstpage
956
Lastpage
960
Abstract
The paper addresses the performance analysis of pulse-shaped direct-sequence ultra-wideband (UWB) communication systems employing offset quadrature phase shit keying (OQPSK). The proposed system offers many advantages over carrier-less UWB schemes, as pulse-shaped OQPSK spreading gives better phase randomization in multi-user interference scenarios, and is also useful for minimizing large phase jumps in the modulated signals, which reduces spectral re-growth and adjacent channel interference, particularly in the presence of non-linear amplifiers. Bit error probability results are derived for fading channels with selection diversity and maximum ratio combining receivers. Numerical examples with pulse shapes based on Gaussian monocycle derivatives and modified Hermite polynomials are given to illustrate the relative performance comparisons among different chip pulse shapes and diversity combining techniques.
Keywords
Gaussian processes; amplifiers; code division multiple access; diversity reception; error statistics; fading channels; polynomials; probability; pulse shaping; quadrature phase shift keying; radio receivers; radiofrequency interference; spread spectrum communication; ultra wideband communication; DS-CDMA; Gaussian monocycle derivative; OQPSK; adjacent channel interference; bit error probability; direct-sequence offset quadrature-spread UWB communication signal; diversity combining technique; fading channel; maximum ratio combining receiver; modified Hermite polynomial; multiuser interference scenario; nonlinear amplifier; offset quadrature phase shit keying; phase jump minimization; phase randomization; pulse shaping; selection diversity; signal modulation; spectral regrowth reduction; ultrawideband communication; Bit error rate; Diversity reception; Error probability; Interference; Multiaccess communication; Receivers; Signal to noise ratio;
fLanguage
English
Publisher
ieee
Conference_Titel
Information Science, Signal Processing and their Applications (ISSPA), 2012 11th International Conference on
Conference_Location
Montreal, QC
Print_ISBN
978-1-4673-0381-1
Electronic_ISBN
978-1-4673-0380-4
Type
conf
DOI
10.1109/ISSPA.2012.6310693
Filename
6310693
Link To Document