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首页> 外文期刊>International Journal of Knowledge-Based in Intelligent Engineering Systems >Effects Of Chaotic Exploration On Reinforcement Learning In Target Capturing Task
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Effects Of Chaotic Exploration On Reinforcement Learning In Target Capturing Task

机译:目标捕获任务中混沌探索对强化学习的影响

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摘要

A process of trial and error plays an important role in not only the human learning but also the machine learning. Such a process is called exploration in the reinforcement learning which has originated from experimental studies on learning in psychology. A uniform pseudorandom number generator appears to be suitable for exploration. However, it is known that a chaotic source also provides a random-like sequence as like as a stochastic source. By applying this random-like feature of a deterministic chaotic generator for exploration in a nonstationary shortcut maze problem, we have observed that a deterministic chaotic generator provides a better performance than a stochastic random exploration generator when used for exploration based on a logistic map. In this study, in order to confirm this difference in the performances of the two generators, we examine another nonstationary task - target capturing. The simulation result of this task agrees with the result of our previous study. From the view of multi-agent system, it is an inhomogeneous or heterogeneous system composed of some kinds of agents in many cases. In such situations, the exploration of them is not uniform. Chaotic exploration may suit well this heterogeneity in such a multi-agent system.
机译:反复试验的过程不仅在人类学习中而且在机器学习中都起着重要的作用。这样的过程被称为强化学习中的探索,它起源于心理学学习的实验研究。统一的伪随机数生成器似乎适合于探索。然而,众所周知,混沌源也像随机源一样也提供了类似随机的序列。通过将确定性混沌生成器的这种类似于随机的特征用于非平稳快捷迷宫问题中的探索,我们已经观察到,当用于基于逻辑图的探索时,确定性混沌生成器比随机随机探索生成器具有更好的性能。在本研究中,为了确认两种发生器的性能差异,我们研究了另一个非平稳任务-目标捕获。该任务的仿真结果与我们先前的研究结果一致。从多主体系统的角度来看,它是在许多情况下由某些主体组成的不均匀或异构系统。在这种情况下,对它们的探索是不统一的。在这样的多主体系统中,混沌探索可能非常适合这种异质性。

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