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Geraud Nangue Tasse

4 accepted papers

2026

Unsupervised Hierarchical Skill Discovery

ICML 2026poster

We consider the problem of unsupervised skill segmentation and hierarchical structure discovery in reinforcement learning. While recent approaches have sought to segment trajectories into reusable skills or options, most rely on action labels, rewards, or handcrafted annotations, limiting their appl…

Cited by 0SourceScholar
2024

Skill Machines: Temporal Logic Skill Composition in Reinforcement Learning

ICLR 2024poster

It is desirable for an agent to be able to solve a rich variety of problems that can be specified through language in the same environment. A popular approach towards obtaining such agents is to reuse skills learned in prior tasks to generalise compositionally to new ones. However, this is a challen…

2022

Generalisation in Lifelong Reinforcement Learning through Logical Composition

ICLR 2022poster

We leverage logical composition in reinforcement learning to create a framework that enables an agent to autonomously determine whether a new task can be immediately solved using its existing abilities, or whether a task-specific skill should be learned. In the latter case, the proposed algorithm al…

Cited by 26SourcePDFScholar