Comparison of Coherent WDMA and Hybrid WDMA/CDMA for the Multiplexing of Optical Signals

Abstract

This paper provides an accurate analysis of the performance of coherent dense wavelength division multiple access (WDMA) schemes introduced for use in high-capacity optical networks. In our analysis the effects of interference from other signals due to the frequency overlap caused by the instability of the carrier frequency of laser, or to mistakes in frequency coordination and assignment, are taken into account. Phase noise and thermal noise are also taken into consideration. Dense WDMA is then coupled with spread-spectrum direct-sequence modulation in order to mitigate the effect of interference from other signals. The performance of this hybrid of WDMA and code division multiple access (CDMA) scheme is also analyzed and compared to that of pure WDMA. The average bit error probability of dense WDMA and WDMA/CDMA schemes is evaluated by integrating the characteristic function of other user interference at the output of the matched optical filter. Gaussian approximation techniques are also employed. Time synchronous and as asynchronous systems are analyzed in this context. Binary phase shift keying (BPSK) data modulation is considered. Our analysis quantifies accurately for first time the multiple access capability of dense WDMA schemes and the advantages offered by employing hybrids of WDMA and CDMA.

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Document Details

Document Type
Technical Report
Publication Date
Jan 01, 1992
Accession Number
ADA454951

Entities

People

  • Behzad Ghaffari
  • Evaggelos A. Geraniotis

Organizations

  • University of Maryland

Tags

DTIC Thesaurus Topics

  • Abstracts
  • Asynchronous Systems
  • Carrier Frequencies
  • Code Division Multiple Access
  • Communication Systems
  • Communications Techniques
  • Frequency
  • Information Operations
  • Modulation
  • Multiple Access
  • Multiplexing
  • Optical Filters
  • Phase Shift
  • Spread Spectrum
  • Wavelength Division Multiple Access

Fields of Study

  • Engineering

Readers

  • Radio communications and signal processing.

Technology Areas

  • Directed Energy