Framework learns useful subgoals from demonstrations and instructions.
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Paper shows intrinsic motivation boosts exploration efficiency in HRL.
A new HRL algorithm learns and exploits multiple subgoals for faster exploration.
Hierarchical Foresight improves robot vision tasks by planning long-term goals.
ISA learns subgoals for reinforcement learning agents.
The paper introduces an adjacency constraint to improve goal-conditioned HRL.
Typical reinforcement learning (RL) agents learn to complete tasks specified by reward functions tailored to their domain. As such, the policies they learn do not generalize even to similar domains. To address this issue, we develop a framework through which a deep RL agent learns to generalize policies from smaller, s…
A central challenge in reinforcement learning is discovering effective policies for tasks where rewards are sparsely distributed. We postulate that in the absence of useful reward signals, an effective exploration strategy should seek out {\it decision states}. These states lie at critical junctions in the state space …
MGHRL learns to generate high-level meta strategies for new tasks.
Building agents that can explore their environments intelligently is a challenging open problem. In this paper, we make a step towards understanding how a hierarchical design of the agent's policy can affect its exploration capabilities. First, we design EscapeRoom environments, where the agent must figure out how to n…
Advances in the field of inverse reinforcement learning (IRL) have led to sophisticated inference frameworks that relax the original modeling assumption of observing an agent behavior that reflects only a single intention. Instead of learning a global behavioral model, recent IRL methods divide the demonstration data i…
Deep learning optimizes VWAP strategy for lower transaction costs.
This paper presents a way of solving Markov Decision Processes that combines state abstraction and temporal abstraction. Specifically, we combine state aggregation with the options framework and demonstrate that they work well together and indeed it is only after one combines the two that the full benefit of each is re…
HRL4IN tackles interactive navigation tasks with mobile manipulators, improving efficiency and performance.
Prediction is arguably one of the most basic functions of an intelligent system. In general, the problem of predicting events in the future or between two waypoints is exceedingly difficult. However, most phenomena naturally pass through relatively predictable bottlenecks---while we cannot predict the precise trajector…
Learning robust value functions given raw observations and rewards is now possible with model-free and model-based deep reinforcement learning algorithms. There is a third alternative, called Successor Representations (SR), which decomposes the value function into two components -- a reward predictor and a successor ma…
We present Vision-based Navigation with Language-based Assistance (VNLA), a grounded vision-language task where an agent with visual perception is guided via language to find objects in photorealistic indoor environments. The task emulates a real-world scenario in that (a) the requester may not know how to navigate to …
Building systems that autonomously create temporal abstractions from data is a key challenge in scaling learning and planning in reinforcement learning. One popular approach for addressing this challenge is the options framework (Sutton et al., 1999). However, only recently in (Bacon et al., 2017) was a policy gradient…
A graph abstraction speeds up reinforcement learning in complex environments.
Bayesian framework captures correlations in discrete environments for better decision-making.
This paper proposes a method to learn from expert trajectories by decomposing tasks into sub-goals.
New model shows hierarchical proof structure helps theorem provers.
Director learns hierarchical behaviors from pixels, outperforming exploration methods.
This work learns a distance function for goal-conditioned RL without prior knowledge.
Unified framework for multi-objective curriculum learning in robotics.
Extended Predictable Feature Analysis (PFAx) [Richthofer and Wiskott, 2017] is an extension of PFA [Richthofer and Wiskott, 2015] that allows generating a goal-directed control signal of an agent whose dynamics has previously been learned during a training phase in an unsupervised manner. PFAx hardly requires assumptio…