根据维基百科对强化学习的定义:reinforcement learning (rl) is an area of machine learning inspired by behaviorist psychology, concerned with how software agents ought to take actions. 如果a (s,a)取advantage function或者q (s,a)或者它们的估计值,就是pg类rl算法的参数更新过程。 可以看作rl对数据有某些偏好来加权策略梯度。 下面是我读过的一些rl+il的文章,大多. 安利一下,openai出品的强化学习 (rl) 入门教程,叫 spinning up。 openai说, 完全没有机器学习基础的人类,也可以迅速上手强化学习。 有 概念,有一系列关键算法的 实现代码,有 习.
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