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Imitation Learning

Imitation Learning is a framework for learning a behavior policy from demonstrations. Usually, demonstrations are presented in the form of state-action trajectories, with each pair indicating the action to take at the state being visited. In order to learn the behavior policy, the demonstrated actions are usually utilized in two ways. The first, known as Behavior Cloning (BC), treats the action as the target label for each state, and then learns a generalized mapping from states to actions in a supervised manner. Another way, known as Inverse Reinforcement Learning (IRL), views the demonstrated actions as a sequence of decisions, and aims at finding a reward/cost function under which the demonstrated decisions are optimal.

Finally, a newer methodology, Inverse Q-Learning aims at directly learning Q-functions from expert data, implicitly representing rewards, under which the optimal policy can be given as a Boltzmann distribution similar to soft Q-learning

Source: Learning to Imitate

Papers

Showing 18211830 of 2122 papers

TitleStatusHype
Learning from Mistakes via Cooperative Study Assistant for Large Language ModelsCode0
Learning Latent Process from High-Dimensional Event Sequences via Efficient SamplingCode0
Confidence-Guided Human-AI Collaboration: Reinforcement Learning with Distributional Proxy Value Propagation for Autonomous DrivingCode0
Transfer Learning for Related Reinforcement Learning Tasks via Image-to-Image TranslationCode0
Learning Memory Mechanisms for Decision Making through DemonstrationsCode0
Simitate: A Hybrid Imitation Learning BenchmarkCode0
Burst-dependent plasticity and dendritic amplification support target-based learning and hierarchical imitation learningCode0
Simulating Emergent Properties of Human Driving Behavior Using Multi-Agent Reward Augmented Imitation LearningCode0
Simulation of robot swarms for learning communication-aware coordinationCode0
LASIL: Learner-Aware Supervised Imitation Learning For Long-term Microscopic Traffic SimulationCode0
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