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20242026
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cs.RO2026

CLASP: Language-Driven Robot Skill Selection and Composition using Task-Parameterized Learning

Markus Knauer, Valentin Gieraths, Tai Mai +4

Enabling robots to understand and execute tasks from natural language commands while maintaining data efficiency remains challenging. Foundation models such as vision-language-acti…

cs.RO2026

IROSA: Interactive Robot Skill Adaptation using Natural Language

Markus Knauer, Samuel Bustamante, Thomas Eiband +3

Foundation models have demonstrated impressive capabilities across diverse domains, while imitation learning provides principled methods for robot skill adaptation from limited dat…

cs.RO2026

Are Foundation Models the Route to Full-Stack Transfer in Robotics?

Freek Stulp, Samuel Bustamante, João Silvério +3

In humans and robots alike, transfer learning occurs at different levels of abstraction, from high-level linguistic transfer to low-level transfer of motor skills. In this article,…

cs.RO2026

Model Reconciliation through Explainability and Collaborative Recovery in Assistive Robotics

Britt Besch, Tai Mai, Jeremias Thun +4

Whenever humans and robots work together, it is essential that unexpected robot behavior can be explained to the user. Especially in applications such as shared control the user an…

cs.RO2025

Towards Embodiment Scaling Laws in Robot Locomotion

Bo Ai, Liu Dai, Nico Bohlinger +7

Cross-embodiment generalization underpins the vision of building generalist embodied agents for any robot, yet its enabling factors remain poorly understood. We investigate embodim…

cs.RO2024

RLDG: Robotic Generalist Policy Distillation via Reinforcement Learning

Charles Xu, Qiyang Li, Jianlan Luo +1

Recent advances in robotic foundation models have enabled the development of generalist policies that can adapt to diverse tasks. While these models show impressive flexibility, th…