• DocumentCode
    778183
  • Title

    Design and analysis of a control system for an optical delay-line circuit used as reconfigurable gain equalizer

  • Author

    Schlipf, T.R. ; Street, M.W. ; Pandavenes, J. ; McBride, R. ; Cumming, D.R.S.

  • Author_Institution
    Inst. for Syst. Level Integration, Livingston, UK
  • Volume
    21
  • Issue
    9
  • fYear
    2003
  • Firstpage
    1944
  • Lastpage
    1952
  • Abstract
    The design and analysis of a control system for a coherent two-port lattice-form optical delay-line circuit used as reconfigurable gain equalizer is presented. The design of the control system, which is based on a real device model and a least-square optimization method, is described in detail. Analysis on a five-stage device for the 32 possible solutions of phase parameters showed that, for some filter characteristics, the variations in power dissipation can vary up to a factor of 2. Furthermore, the solution selection has influence on the optimization result and number of iterations needed. A sensitivity analysis of the phase parameters showed that the allowable error in the phase parameters should not exceed a standard deviation of π/500 in order to achieve a total maximal absolute accuracy error not greater than approximately 0.6 dB. A five-stage device has been fabricated using planar lightwave circuit technology that uses the thermooptic effect. Excellent agreement between simulations and measurements has been achieved.
  • Keywords
    FIR filters; equalisers; integrated optoelectronics; optical communication equipment; optical delay lines; thermo-optical devices; coherent two-port lattice-form optical delay-line circuit; configurable gain equalizer; control system; filter characteristics; five-stage device; least-square optimization method; optical delay-line circuit; phase parameters; planar lightwave circuit; reconfigurable gain equalizer; sensitivity analysis; thermooptic effect; total maximal absolute accuracy error; Circuits; Control system analysis; Control system synthesis; Control systems; Delay; Equalizers; Optical control; Optical design; Optical filters; Optical sensors;
  • fLanguage
    English
  • Journal_Title
    Lightwave Technology, Journal of
  • Publisher
    ieee
  • ISSN
    0733-8724
  • Type

    jour

  • DOI
    10.1109/JLT.2003.816838
  • Filename
    1230173