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Rémi Munos

4 accepted papers

2017

Automated Curriculum Learning for Neural Networks

ICML 2017poster

We introduce a method for automatically selecting the path, or syllabus, that a neural network follows through a curriculum so as to maximise learning efficiency. A measure of the amount that the network learns from each data sample is provided as a reward signal to a nonstationary multi-armed bandi…

Cited by 671SourcePDFScholar
2017

Count-Based Exploration with Neural Density Models

ICML 2017poster

Bellemare et al. (2016) introduced the notion of a pseudo-count, derived from a density model, to generalize count-based exploration to non-tabular reinforcement learning. This pseudo-count was used to generate an exploration bonus for a DQN agent and combined with a mixed Monte Carlo update was suf…

Cited by 806SourcePDFScholar