Value Prediction Network

July 11, 2017 Β· Declared Dead Β· πŸ› Neural Information Processing Systems

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Authors Junhyuk Oh, Satinder Singh, Honglak Lee arXiv ID 1707.03497 Category cs.AI: Artificial Intelligence Cross-listed cs.LG Citations 346 Venue Neural Information Processing Systems Last Checked 1 month ago
Abstract
This paper proposes a novel deep reinforcement learning (RL) architecture, called Value Prediction Network (VPN), which integrates model-free and model-based RL methods into a single neural network. In contrast to typical model-based RL methods, VPN learns a dynamics model whose abstract states are trained to make option-conditional predictions of future values (discounted sum of rewards) rather than of future observations. Our experimental results show that VPN has several advantages over both model-free and model-based baselines in a stochastic environment where careful planning is required but building an accurate observation-prediction model is difficult. Furthermore, VPN outperforms Deep Q-Network (DQN) on several Atari games even with short-lookahead planning, demonstrating its potential as a new way of learning a good state representation.
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