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Toki Migimatsu

10 accepted papers

2023

Active Task Randomization: Learning Robust Skills via Unsupervised Generation of Diverse and Feasible Tasks

IROS 2023poster

Solving real-world manipulation tasks requires robots to be equipped with a repertoire of skills that can be applied to diverse scenarios. While learning-based methods can enable robots to acquire skills from interaction data, their success relies on collecting training data that covers the diverse…

Cited by 4SourceScholar
2022

Category-Independent Articulated Object Tracking with Factor Graphs

IROS 2022poster

Robots deployed in human-centric environments may need to manipulate a diverse range of articulated objects, such as doors, dishwashers, and cabinets. Articulated objects often come with unexpected articulation mechanisms that are inconsistent with categorical priors: for example, a drawer might rot…

Cited by 22SourceScholar
2022

Symbolic State Estimation with Predicates for Contact-Rich Manipulation Tasks

ICRA 2022poster

Manipulation tasks often require a robot to adjust its sensorimotor skills based on the state it finds itself in. Taking peg-in-hole as an example: once the peg is aligned with the hole, the robot should push the peg downwards. While high level execution frameworks such as state machines and behavio…

Cited by 13SourceScholar
2021

OmniHang: Learning to Hang Arbitrary Objects using Contact Point Correspondences and Neural Collision Estimation

ICRA 2021poster

In this paper, we explore whether a robot can learn to hang arbitrary objects onto a diverse set of supporting items such as racks or hooks. Endowing robots with such an ability has applications in many domains such as domestic services, logistics, or manufacturing. Yet, it is a challenging manipula…

Cited by 20SourceScholar
2020

Concept2Robot: Learning Manipulation Concepts from Instructions and Human Demonstrations

RSS 2020poster

We aim to endow a robot with the ability to learn manipulation concepts that link natural language instructions to motor skills. Our goal is to learn a single multi-task policy that takes as input a natural language instruction and an image of the initial scene and outputs a robot motion trajectory…

Cited by 221SourcePDFScholar