Papers › Predictive Information Accelerates Learning in RL

Predictive Information Accelerates Learning in RL

24 Jul 2020NeurIPS 2020 12arXiv:2007.12401archive 2025-07-28

Kuang-Huei Lee, Ian Fischer, Anthony Liu, Yijie Guo, Honglak Lee, John Canny, Sergio Guadarrama

The Predictive Information is the mutual information between the past and the future, I(X_past; X_future). We hypothesize that capturing the predictive information is useful in RL, since the ability to model what will happen next is necessary for success on many tasks. To test our hypothesis, we train Soft Actor-Critic (SAC) agents from pixels with an auxiliary task that learns a compressed representation of the predictive information of the RL environment dynamics using a contrastive version of the Conditional Entropy Bottleneck (CEB) objective. We refer to these as Predictive Information SAC (PI-SAC) agents. We show that PI-SAC agents can substantially improve sample efficiency over challenging baselines on tasks from the DM Control suite of continuous control environments. We evaluate PI-SAC agents by comparing against uncompressed PI-SAC agents, other compressed and uncompressed agents, and SAC agents directly trained from pixels. Our implementation is given on GitHub.

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expd google-research/pisac/pisac/schedule_utils.py official repository unverified Apache-2.0 (permissive) · 31b1ba8f3801d92a · report
filter_invalid_transition google-research/pisac/pisac/utils.py official repository unverified Apache-2.0 (permissive) · 6084facad2835cd4 · report
get_schedule_fn google-research/pisac/pisac/schedule_utils.py official repository unverified Apache-2.0 (permissive) · b8a75ea16d98165d · report
image_strip_summary google-research/pisac/pisac/utils.py official repository unverified Apache-2.0 (permissive) · 01b60cf975a07343 · report
schedule_from_str google-research/pisac/pisac/schedule_utils.py official repository unverified Apache-2.0 (permissive) · a42ce42da2f7b6c5 · report

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Continuous Controlcontinuous-control

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Methods

1x1 ConvolutionAverage PoolingConvolutionDilated ConvolutionGlobal Average PoolingSAC

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