Abstract
Four-wave mixing (FWM) is the most dominating feature for 440 × 14 Gbps super dense wavelength division multiplexing system, which almost spoil the performance of super dense communication signals. So, the effect of FWM has mitigated with the implementation of optical phase conjugation with combination of dispersion modified fiber and fiber grating compensator. Further, power level of the transmitting signals has also enhanced with the arrangement of RAMAN-SOA hybrid optical amplifier. Furthermore, final analysis has recommended that proposed techniques are the acceptable approach for the proposed super dense communication system.
Acknowledgments
Authors are grateful to Guru Gobind Singh Indraprastha University, India for providing all valuable support to execute this research work.
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Research ethics: This work is original; no portion of it has been submitted or published prior to this journal submission.
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Informed consent: This research work has proposed a novel approach for high-speed optical communication.
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Author contributions: Every co-author has contributed in a different way to the work. The research work’s layout was created by authors CK, while GK, DS and P helped write the paper draft, the optical communication system’s program, and the results analysis. Following the completion of the manuscript, all writers have also conducted additional detailed analyses of the same.
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Use of Large Language Models, AI and Machine Learning Tools: None declared.
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Conflict of interest: There is no conflict of interest for this research work.
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Research funding: None declared.
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Data availability: All data included in this study are available upon request by contact with the corresponding author.
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