研究目的
Investigating the performance of complexity and bandwidth of the output of SSLs, and the influence of injection strength, feedback strength, linewidth enhancement factor (LWEF) and frequency detuning on the concealment of TDS, and the high-quality synchronization between each pair of twin-slave-laser pairs (TSLPs).
研究成果
The proposed WDM-based chaotic secure communication scheme allows for bidirectional message exchange with high complexity and randomness in chaotic signals. It effectively conceals time delay signatures (TDS) and achieves high-quality synchronization under matched parameters. The system's security is enhanced by the concealment of TDS, making it a promising candidate for future secure optical communication networks.
研究不足
The study is based on numerical simulations, and practical implementation may face challenges such as parameter mismatches, noise, and the need for precise synchronization. The maximum message rate is limited by the resynchronization time after a bit arrives at one of the lasers.
1:Experimental Design and Method Selection:
The study employs a WDM-based chaos communication scheme integrating optical injection, optical feedback, and electro-optic phase feedback to drive chaotic synchronization in semiconductor lasers.
2:Sample Selection and Data Sources:
The system consists of a master semiconductor laser (MSL) and multiple slave semiconductor lasers (SSLs) with specific parameters for simulation.
3:List of Experimental Equipment and Materials:
Includes semiconductor lasers, beam splitters, phase modulators, wavelength-division-multiplexing (WDM) components, wavelength converters, and photodetectors.
4:Experimental Procedures and Operational Workflow:
The output of MSL is injected into SSLs to drive chaotic synchronization. Messages are encoded by modulating the bias current and decoded by monitoring synchronization error.
5:Data Analysis Methods:
Utilizes largest Lyapunov exponent (LLE), Lempel–Ziv complexity (LZC), permutation entropy (PE), autocorrelation function (ACF), and delayed mutual information (DMI) for analyzing chaotic dynamics and synchronization quality.
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