Title :
Improved receivers for coherent FSK systems
Author :
Gao, Hongsheng ; Smith, Peter J. ; Shafi, Mansoor
Author_Institution :
Inst. of Stat. & Oper. Res., Victoria Univ., Wellington, New Zealand
fDate :
11/1/1998 12:00:00 AM
Abstract :
There has been considerable interest over the last decade in the detection of digital coherent lightwave signals corrupted by phase noise. However, the majority of the work has been in the performance analysis of various modulation schemes. In addition, the receivers studied have, in general, been zero-phase noise optimal or ad hoc modifications of these. In this paper, we consider the design problem of constructing optimal receivers for systems using frequency shift keying (FSK). Using the innovations approach, we show the format of the optimal receiver and use a small phase noise approximation to derive suboptimal receivers. Also, receivers based on optimum linear filters are also derived. Both receivers are analyzed by simulation and performance improvements over the standard receivers are shown. Furthermore, the receivers developed can equally well be used to further improve the performance of other detection schemes such as postdetection filtering and time diversity. The methodology is also used to derive equivalent receivers for systems using on-off keying (OOK)
Keywords :
approximation theory; frequency shift keying; optical design techniques; optical noise; optical receivers; optical signal detection; optimisation; phase noise; OOK; ad hoc modifications; coherent FSK systems; design problem; detection schemes; digital coherent lightwave signal detection; equivalent receivers; frequency shift keying; methodology; modulation schemes; on-off keying; optical receivers; optimal receiver; optimal receivers; optimum linear filters; performance analysis; phase noise; postdetection filtering; small phase noise approximation; standard receivers; suboptimal receivers; time diversity; zero-phase noise optimal; Filtering; Frequency shift keying; Least squares approximation; Nonlinear filters; Optical filters; Optical receivers; Performance analysis; Phase detection; Phase noise; Technological innovation;
Journal_Title :
Lightwave Technology, Journal of