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A Q-leaming algorithm applied to the behavioural decision-making of affective virtual human

机译:一种Q学习算法在情感虚拟人的行为决策中的应用

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Traditional Q-Learning algorithm has problems of data transmission lag and its environmental reward model is too simple. It cannot be well applied to the reinforcement learning of affective virtual human behaviour decision. Analogizing the thought of human' s self-reflection in this paper, a improved Q-learning algorithm is proposed, which can be easily applied in behavioural decision-making of affective virtual human. The Q-learning algorithm in this paper not only strengthens the behaviour strategy with better learning cycle and weakens the behaviour strategy with worse learning cycle by the way of self-reflection reward, but also picks up the speed of the effect of behavioural decision feedback to state-action pair in a learning cycle, thus improving the convergence rate of Q-learning algorithm in affective virtual human's behavioural decision-making. The algorithm aims at helping affective virtual human carry out path optimization in a two-dimensional grid environment in the simulation test. The results show that the improved Q-learning algorithm is significantly faster than the traditional Q-learning algorithm in achieving the optimal control strategy with an average of 43.7 learning cycles. The validity of the algorithm is verified.
机译:传统的Q-Learning算法存在数据传输滞后的问题,其环境奖励模型过于简单。它不能很好地应用于情感虚拟人类行为决策的强化学习。本文通过模拟人的自我反思思想,提出了一种改进的Q学习算法,可以很容易地应用于情感虚拟人的行为决策中。本文提出的Q学习算法不仅通过自我反省奖励的方式来增强学习周期更好的行为策略,而且在学习周期较差的情况下削弱行为策略,并且加快了行为决策反馈对行为的反馈速度。状态-动作对在一个学习周期中的状态,从而提高了Q学习算法在情感虚拟人的行为决策中的收敛速度。该算法旨在在仿真测试中帮助情感虚拟人在二维网格环境中进行路径优化。结果表明,改进的Q学习算法在实现平均控制周期为43.7个学习周期的最优控制策略上,明显快于传统的Q学习算法。验证了算法的有效性。

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