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October 15, 2025Mathematics6 citationsOpen Access

On Fractional Discrete-Time Computer Virus Model: Stability, Bifurcation, Chaos and Complexity Analysis

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OKOmar KahouliIZImane ZouakAOAdel Ouannas

Key Points

  • The model reveals chaotic attractors that showcase complex propagation dynamics of computer viruses.
  • Numerical simulations suggest that heterogeneous memory substantially affects virus dynamics and system evolution.
  • Stability and bifurcation analyses indicate rich complexity linked to fractional-order dynamics in virus modeling.
  • Using Approximate Entropy, the study assesses the unpredictability of the virus model's evolution in digital networks.

Abstract

Computer viruses continue to threaten the security of digital networks, and their complex propagation dynamics require refined modelling tools. Most existing models rely on integer-order dynamics or assume uniform memory effects, which limit their ability to capture heterogeneous behaviours observed in practice. To address this gap, we propose a discrete incommensurate fractional-order virus model based on Caputo-like delta differences, where each compartment is assigned a distinct fractional order to represent mismatched time scales. The model’s dynamics are analysed in terms of stability, bifurcation, and chaos. Numerical results reveal the emergence of rich chaotic attractors, emphasizing the impact of fractional memory on system evolution. To quantify complexity, we employ Approximate Entropy and Spectral Entropy and relate these indicators to the maximum Lyapunov exponent, confirming the system’s sensitivity and unpredictability. All numerical simulations and visualizations were performed using MATLAB (R2015a). The findings highlight the importance of heterogeneous memory in computer-virus modeling and offer new insights for developing theoretical foundations of robust cybersecurity strategies.

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Cite This Study

Kahouli et al. (2025) studied this question.

synapsesocial.com/papers/68ef858cc6a308ba063556c6https://doi.org/10.3390/math13203272
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