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Hierarchical discretized pursuit nonlinear learning automata with rapid convergence and high accuracy

机译:具有快速收敛和高精度的分层离散追踪非线性学习自动机

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摘要

A new absorbing multiaction learning automaton that is epsilon-optimal is introduced. It is a hierarchical discretized pursuit nonlinear learning automaton that uses a new algorithm for positioning the actions on the leaves of the hierarchical tree. The proposed automaton achieves the highest performance (speed of convergence, central processing unit (CPU) time, and accuracy) among all the absorbing learning automata reported in the literature up to now. Extensive simulation results indicate the superiority of the proposed scheme. Furthermore, it is proved that the proposed automaton is epsilon-optimal in every stationary stochastic environment.
机译:介绍了一种ε最优的吸收式多动作学习自动机。它是一种分层的离散化追踪非线性学习自动机,它使用一种新算法将动作定位在分层树的叶子上。到目前为止,提出的自动机在文献中报告的所有吸收式学习自动机中都实现了最高的性能(收敛速度,中央处理器(CPU)时间和准确性)。大量的仿真结果表明了该方案的优越性。此外,证明了所提出的自动机在每个平稳随机环境中都是ε最优的。

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