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April 19, 2026Data in Brief0 citationsOpen Access

Experimental datasets on intermittency and observability in networks of electronic oscillators. Analogue and hybrid configuration.

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VVV.P. Vera-ÁvilaRRR.R. Rivera-DurónJOJ.M. Rodríguez Ornelas

Key Points

  • The aim is to present datasets on synchronization phenomena in networks of electronic oscillators, focusing on intermittent dynamics.
  • Two experimental setups with 28 chaotic electronic oscillators were created: one analog and one hybrid.
  • Networks were interconnected using a Watts-Strogatz small-world network or Erdős–Rényi random topology.
  • Data recorded includes behavior transitions between synchronized and desynchronized states.
  • Datasets reveal intermittent synchronization patterns similar to those observed in biological systems.
  • Experimental setups provide valuable insights for analyzing the impact of coupling strengths on synchronization.

Abstract

Synchronization phenomena are pervasive in nature and appear across a wide range of scientific areas, including physics, biology, and engineering. These phenomena describe how interacting dynamical systems tend to coordinate their behavior over time. In many cases, the transition toward a fully synchronized state is neither immediate nor continuous; instead, it consists of intermittent dynamics characterized by alternating intervals of coherent behavior, where the systems evolve in unison, and bursts of desynchronized activity. Such intermittent synchronization has been extensively observed in biological systems, particularly in ensembles of neurons, where it plays a fundamental role in processes such as information transmission and cognitive function. The data sets presented in this work originate from two distinct experimental setups involving networks of 28 chaotic electronic oscillators based on the Rössler-like system. In the first approach, the networks are constructed entirely with analog electronic components, and in the second approach, the hybrid, we use a real-time datacard for the coupling with the electronic circuits. For the two experimental setup approaches, the oscillators are interconnected in a Watts-Strogatz (WS) small-world network or an Erdős–Rényi (ER) random topology. We consider that the datasets derived from these four experiments offer valuable resources for researchers aiming to analyze and validate theoretical models of synchronization. They are suitable for systematic studies on the influence of weak linear coupling strengths in the route to synchronized states.

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Cite This Study

Vera-Ávila et al. (2026) studied this question.

synapsesocial.com/papers/69e4713b010ef96374d8dd16https://doi.org/10.1016/j.dib.2026.112785
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