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Tracking Emotions: Intrinsic Motivation Grounded on Multi - Level Prediction Error Dynamics

机译:跟踪情绪:在多级预测误差动态接地的内在动机

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We present an intrinsic motivation architecture that generates behaviors towards self-generated and dynamic goals and that regulates goal selection and the balance between exploitation and exploration through multi-level monitoring of prediction error dynamics. This architecture modulates exploration noise and leverages computational resources according to the dynamics of the overall performance of the learning system. Results show that this architecture outperforms intrinsic motivation approaches where exploratory noise and goals are fixed. We suggest that the tracking of prediction error dynamics allows an artificial agent to be intrinsically motivated to seek new experiences but constrained to those that generate reducible prediction error. We argue about the potential relationship between emotional valence and rates of progress toward a goal.
机译:我们提出了一个内在的动机架构,为自我生成和动态目标产生行为,并通过多级监测预测误差动态来调节目标选择和利用与探索之间的平衡。该架构根据学习系统的整体性能的动态调制探索噪声并利用计算资源。结果表明,该体系结构优于固定探索性噪声和目标的内在动机方法。我们建议预测误差动态的跟踪允许人工代理人本质上积极地寻求新的经验,而是限制为生成可还原预测误差的体验。我们争论情绪化价与目标进展的潜在关系。

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