Analytical approach for performance evaluation of QPSK system with optical coherent receiver and digital signal processing

Florence(2010)

Cited 23|Views4
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Abstract
The Bit-Error-Ratio (BER) floor caused by the laser phase noise in the optical fibre communication system with quadrature phase shift keying (QPSK) and coherent detection followed by digital signal processing (DSP) is analytically evaluated. An in-phase and quadrature (I&Q) receiver with a carrier phase recovery using DSP is considered. The carrier phase recovery is based on a phase estimation of a finite sum (block) of the signal samples raised to the power of four and the phase unwrapping at transitions between blocks. It is demonstrated that errors generated at block transitions cause the dominating contribution to the system BER (floor) when the impact of the additive noise is negligibly small in comparison with the effect of the laser phase noise. Even the BER floor in the case when the phase unwrapping is omitted is analytically derived and applied to emphasize the crucial importance of this signal processing operation. The analytical results are verified by full Monte Carlo simulations. Based on the achieved analytical results the laser linewidth tolerance of the system is calculated.
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Key words
monte carlo methods,digital signal processing chips,error statistics,optical fibre communication,optical receivers,performance evaluation,phase estimation,quadrature phase shift keying,monte carlo simulations,qpsk,bit error ratio,carrier phase recovery,coherent detection,digital signal processing,in-phase receiver,laser phase noise,optical coherent receiver,quadrature receiver,fibre optics communications,phase noise,optical fibre,niobium,monte carlo simulation,communication system,optical communication,bit error rate,signal processing
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