The effects of symmetry breaking on the dynamics of an inertial neural system with a non-monotonic activation function: theoretical study, asymmetric multistability and experimental investigation
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Publication:2162194
DOI10.1016/j.physa.2022.127458OpenAlexW4297790102WikidataQ113866948 ScholiaQ113866948MaRDI QIDQ2162194
Bertrand Frederick Boui A. Boya, Joseph Yves Effa, J. Kengne, Balamurali Ramakrishnan, Karthikeyan Rajagopal
Publication date: 5 August 2022
Published in: Physica A (Search for Journal in Brave)
Full work available at URL: https://doi.org/10.1016/j.physa.2022.127458
symmetry breakinginertial neural systemmicrocontroller implementationasymmetric multistabilitybursting oscillation
Cites Work
- Bifurcations and multistability in the extended Hindmarsh-Rose neuronal oscillator
- Absolute term introduced to rebuild the chaotic attractor with constant Lyapunov exponent spectrum
- Two bifurcation routes to multiple chaotic coexistence in an inertial two-neural system with time delay
- Mixed-coexistence of periodic orbits and chaotic attractors in an inertial neural system with a nonmonotonic activation function
- Amplitude control approach for chaotic signals
- Periodicity of non-autonomous inertial neural networks involving proportional delays and non-reduced order method
- Effects of Low and High Neuron Activation Gradients on the Dynamics of a Simple 3D Hopfield Neural Network
- Memristor Synapse-Based Morris–Lecar Model: Bifurcation Analyses and FPGA-Based Validations for Periodic and Chaotic Bursting/Spiking Firings
- Multitype Activity Coexistence in an Inertial Two-Neuron System with Multiple Delays
- Hidden extreme multistability with hyperchaos and transient chaos in a Hopfield neural network affected by electromagnetic radiation
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