Global Polynomial Pinning Synchronization of Coupled Reaction-diffusion Inertial Neural Networks via Dual Event Triggered Markov-switched Control
Researchers at Nazarbayev University have made a significant breakthrough in the field of information and data encoding and encryption. The team, led by Dr. Ardak Kashkynbayev, has developed a novel method for achieving global polynomial pinning synchronization (GPPS) in coupled reaction-diffusion inertial neural networks (CRDINNs) with proportional delays. This method, called dual event triggered Markov-switched control (DETMC), addresses the challenges of derivation process issues and improves control efficiency. The research has been peer-reviewed and published in the journal Communications In Nonlinear Science and Numerical Simulation.
Key Takeaways:
- The researchers have developed a novel Halanay inequality involving proportional delays to investigate the polynomial stability of CRDINNs under DETMC.
- The proposed pathway for achieving GPPS in systems like CRDINNs through DETMC is validated with easily verifiable linear matrix inequalities (LMIs) in MATLAB.
- The integration of chaotic sequences from CRDINNs with permutation-diffusion schemes via DETMC leads to the development of a new image encryption algorithm.
- The new image encryption algorithm is rigorously evaluated using various statistical metrics.
- The researchers have shown that the proposed method significantly improves control efficiency and addresses derivation process issues.
Statistics:
- The research has been funded by the Science Committee of the Ministry of Science & Higher Education of the Republic of Kazakhstan and the Nazarbayev University under Faculty-development competitive research grants program for 2024-2026.
- The research has been peer-reviewed and published in the journal Communications In Nonlinear Science and Numerical Simulation.
- The proposed method has been validated with easily verifiable linear matrix inequalities (LMIs) in MATLAB.
- The integration of chaotic sequences from CRDINNNs with permutation-diffusion schemes via DETMC leads to the development of a new image encryption algorithm.
Sources:
- Global Polynomial Pinning Synchronization of Coupled Reaction-diffusion Inertial Neural Networks Via Dual Event Triggered Markov-switched Control Under Multiple Cyber Attacks. Communications In Nonlinear Science and Numerical Simulation, 2025;150.
- Elsevier, Radarweg 29, 1043 Nx Amsterdam, Netherlands. (Elsevier - www.elsevier.com; Communications In Nonlinear Science and Numerical Simulation - www.journals.elsevier.com/communications-in-nonlinear-science-and-numerical-simulation/)
- Ardak Kashkynbayev, Nazarbayev University, School of Sciences and Humanities, Dept. of Mathematics, Astana 010000, Kazakhstan.