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Licensed Unlicensed Requires Authentication Published by De Gruyter February 8, 2021

Design of 16 × 40 Gbps hybrid PDM-WDM FSO communication system and its performance comparison with the traditional model under diverse weather conditions of Bangladesh

  • A. K. M. Sharoar Jahan Choyon ORCID logo EMAIL logo and Ruhin Chowdhury

Abstract

A comprehensive design is proposed for free-space optical (FSO) communication system by hybridizing polarization division multiplexing (PDM) with wavelength division multiplexing (WDM) and its performance is investigated under diverse turbulent weather conditions of Bangladesh. Here we consider gamma–gamma (G–G) distribution for the turbulent FSO channel model. Moreover, a PDM-WDM technique not only maximizes the link capacity of FSO system but also enhances the spectral efficiency (SE) of the system. Besides, the performance of this hybrid PDM-WDM FSO system is compared with the traditional model and the proposed hybrid system exhibits excellent performance under diverse atmospheric conditions of Bangladesh. Performance analysis of the proposed model as well as the comparison with the traditional model is described in terms of optical power spectrum (OPS), optical signal to noise ratio (OSNR), bit error rate (BER), Q factor, constellation diagrams, and eye diagrams.


Corresponding author A. K. M. Sharoar Jahan Choyon, Department of EECE, Military Institute of Science & Technology (MIST), Dhaka, Bangladesh, E-mail:
A. K. M. Sharoar Jahan Choyon and Ruhin Chowdhury contributed equally.

Acknowledgement

The authors wish to thank the anonymous reviewers for their valuable suggestions.

  1. Author contributions: All the authors have accepted responsibility for the entire content of this submitted manuscript and approved submission. Both authors contributed equally.

  2. Research funding: This research received no funding from any funding sources.

  3. Conflict of interest statement: The authors declare no conflicts of interest regarding this article.

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Received: 2020-10-07
Accepted: 2021-01-12
Published Online: 2021-02-08

© 2021 Walter de Gruyter GmbH, Berlin/Boston

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