1 Department of Computer Science, Institut Supérieur de Commerce de Matadi (ISC-Matadi), Matadi, Kongo Central, Democratic Republic of the Congo.
2 Department of Electrical Engineering, Faculty of Engineering, Université Mapon, Kindu, Democratic Republic of the Congo.
3 Department of Physics and Applied Sciences, Université Pédagogique National (UPN), Kinshasa, Democratic Republic of the Congo.
4 Department of Computer Science, Institut Supérieur de Statistique de Kinshasa (ISS), Kinshasa, Democratic Republic of the Congo.
World Journal of Advanced Research and Reviews, 2026, 31(01), 883–902
Article DOI: 10.30574/wjarr.2026.31.1.1915
Received on 07 June 2026; revised on 13 July 2026; accepted on 16 July 2026
This paper presents a comprehensive reliability assessment framework for optical fiber communication systems by integrating physical degradation analysis, reliability modeling approaches, and network-level performance evaluation. First, the major failure mechanisms affecting conventional and advanced optical fibers are systematically investigated, highlighting their impact on mechanical integrity and optical transmission quality. Then, various reliability assessment methodologies are reviewed and compared, including statistical models, stochastic degradation models, fracture mechanics-based approaches, environmental reliability models, and advanced monitoring techniques based on optical sensing and artificial intelligence. The proposed framework is applied to the Kongo Central optical fiber network as a practical case study. Conventional reliability models based on exponential and Weibull distributions are evaluated and compared with a Markov-based stochastic approach to analyze degradation evolution, failure probability, and long-term availability. The results demonstrate that the Weibull model provides a more realistic representation of aging-related degradation compared with the exponential model, while the Markov approach enables a detailed description of transitions between healthy, degraded, and failed states by incorporating maintenance effects. The analysis also shows that network reliability is strongly influenced by failure rates, repair duration, and the effectiveness of redundancy strategies. This study provides an integrated methodology for bridging physical failure mechanisms and system-level reliability evaluation, offering valuable insights for predictive maintenance, resilience improvement, and the design of future intelligent optical communication infrastructures.
Optical fiber communication systems; Reliability assessment; Degradation mechanisms; Weibull model; Markov process; Fracture mechanics; Predictive maintenance; Network resilience
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Blanchard Kiese Ndiwulu, Joseph Ramazani Mukamba, God’el Kinyoka Kabalumuna and Jean Marcel Mbikayi Mupanya. A comprehensive framework for reliability assessment of optical fiber communication systems: From physical degradation mechanisms to network-level evaluation. World Journal of Advanced Research and Reviews, 2026, 31(01), 883–902. Article DOI: https://doi.org/10.30574/wjarr.2026.31.1.1915