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January 27, 2026Journal of Machine Learning and Information Security0 citationsOpen Access

Prescribed-Time Projective Synchronization for Different Dimensional Complex Networks via Fuzzy Reinforcement Learning

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TDTao DongXQXin Qu

Key Points

  • To explore prescribed-time projective synchronization for complex networks of varying dimensions using fuzzy control.
  • Constructing a synchronization error for complex networks.
  • Proposing a performance value function integrated with time and accuracy.
  • Introducing a fuzzy controller in an adaptive dynamic programming framework.
  • Conducting convergence analysis to validate synchronization error reduction.
  • The projective synchronization error converges to a predefined set within prescribed time.
  • The proposed methodology effectively achieves synchronization in different dimensional complex networks.

Abstract

This paper investigates the prescribed-time projective synchronization (PTPS) for complex networks (CNs) with different dimension. To solve this problem, a projective synchronization error is constructed and a novel performance value function integrated with the prescribed time and desired accuracy is proposed. Subsequently, a fuzzy controller is introduced to address the prescribed-time projective synchronization issue. The controller is realized through a fuzzy adaptive dynamic programming (ADP)-based framework. Additionally, the convergence analysis of the proposed methodology is provided, demonstrating that the projective synchronization error can converge to a predefined residual set within the prescribed time, which means the synchronization of CNs is solved. Finally, a numerical example is presented to verify the obtained results.

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Cite This Study

Dong et al. (2026) studied this question.

synapsesocial.com/papers/697854fdccb046adae5173behttps://doi.org/10.53941/jmlis.2026.100002
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