Demonstrating Remote Synchronization: An Experimental Approach with Nonlinear Oscillators
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arXiv
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| Format: | Preprint |
| Published: |
2024
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| _version_ | 1866918004944535552 |
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| author | Pandey, Sanjeev Kumar Patel, Neetish |
| author_facet | Pandey, Sanjeev Kumar Patel, Neetish |
| contents | This study investigates remote synchronization in arbitrary network clusters of coupled nonlinear oscillators, a phenomenon inspired by neural synchronization in the brain. Employing a multi-faceted approach encompassing analytical, numerical, and experimental methodologies, we leverage the Master Stability Function (MSF) to analyze network stability. We provide experimental evidence of remote synchronization between two clusters of nonlinear oscillators, where oscillators within each cluster are also remotely connected. This observation parallels the thalamus-mediated synchronization of neuronal populations in the brain. An electronic circuit testbed, supported by nonlinear ODE modeling and LT Spice simulation, was developed to validate our theoretical predictions. Future work will extend this investigation to encompass diverse network topologies and explore potential applications in neuroscience, communication networks, and power systems. |
| format | Preprint |
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arxiv_https___arxiv_org_abs_2411_10769 |
| institution | arXiv |
| publishDate | 2024 |
| record_format | arxiv |
| spellingShingle | Demonstrating Remote Synchronization: An Experimental Approach with Nonlinear Oscillators Pandey, Sanjeev Kumar Patel, Neetish Systems and Control Chaotic Dynamics This study investigates remote synchronization in arbitrary network clusters of coupled nonlinear oscillators, a phenomenon inspired by neural synchronization in the brain. Employing a multi-faceted approach encompassing analytical, numerical, and experimental methodologies, we leverage the Master Stability Function (MSF) to analyze network stability. We provide experimental evidence of remote synchronization between two clusters of nonlinear oscillators, where oscillators within each cluster are also remotely connected. This observation parallels the thalamus-mediated synchronization of neuronal populations in the brain. An electronic circuit testbed, supported by nonlinear ODE modeling and LT Spice simulation, was developed to validate our theoretical predictions. Future work will extend this investigation to encompass diverse network topologies and explore potential applications in neuroscience, communication networks, and power systems. |
| title | Demonstrating Remote Synchronization: An Experimental Approach with Nonlinear Oscillators |
| topic | Systems and Control Chaotic Dynamics |
| url | https://arxiv.org/abs/2411.10769 |