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Kernel-Based Learning with Guarantees for Multi-agent Applications

  • Krzysztof Kowalczyk,
  • Paweł Wachel,
  • Cristian R. Rojas

摘要

This paper addresses a kernel-based learning problem for a network of agents locally observing a latent multidimensional, nonlinear phenomenon in a noisy environment. We propose a learning algorithm that requires only mild a priori knowledge about the phenomenon under investigation and delivers a model with corresponding non-asymptotic high probability error bounds. Both non-asymptotic analysis of the method and numerical simulation results are presented and discussed in the paper.