Skip to main navigation Skip to search Skip to main content

Modulation format identification in fiber communications using single dynamical node-based photonic reservoir computing

  • Qiang Cai
  • , Ya Guo
  • , Pu Li
  • , Adonis Bogris
  • , K. Alan Shore
  • , Yamei Zhang
  • , Yuncai Wang
  • Taiyuan University of Technology
  • University of West Attica
  • Nanjing University of Aeronautics and Astronautics

Research output: Contribution to journalArticlepeer-review

81 Downloads (Pure)

Abstract

We present a simple approach based on photonic reservoir computing (P-RC) for modulation format identification (MFI) in optical fiber communications. Here an optically injected semiconductor laser with self-delay feedback is trained with the representative features from the asynchronous amplitude histograms of modulation signals. Numerical simulations are conducted for three widely used modulation formats (onx2013;off keying, differential phase-shift keying, and quadrature amplitude modulation) for various transmission situations where the optical signal-to-noise ratio varies from 12 to 26x00A0;dB, the chromatic dispersion varies from x2212;500 to 500x00A0;ps/nm, and the differential group delay varies from 0 to 20x00A0;ps. Under these situations, final simulation results demonstrate that this technique can efficiently identify all those modulation formats with an accuracy of gt;95RC layer such as the injection strength, feedback strength, bias current, and frequency detuning. The proposed technique utilizes very simple devices and thus offers a resource-efficient alternative approach to MFI.
Original languageEnglish
Pages (from-to)B1-B8
JournalPhoton. Res.
Volume9
Issue number1
Early online date24 Dec 2020
DOIs
Publication statusPublished - 1 Jan 2021

Keywords

  • Differential phase shift keying
  • Fiber optic communications
  • Numerical simulation
  • Optical networks
  • Phase modulation
  • Quadrature amplitude modulation

Fingerprint

Dive into the research topics of 'Modulation format identification in fiber communications using single dynamical node-based photonic reservoir computing'. Together they form a unique fingerprint.

Cite this