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Jinda Cui

4 accepted papers

2024

HyperTaxel: Hyper-Resolution for Taxel-Based Tactile Signals Through Contrastive Learning

IROS 2024poster

To achieve dexterity comparable to that of humans, robots must intelligently process tactile sensor data. Taxel-based tactile signals often have low spatial-resolution, with non-standardized representations. In this paper, we propose a novel framework, HyperTaxel, for learning a geometrically-inform…

Cited by 3SourceScholar
2024

ResPilot: Teleoperated Finger Gaiting via Gaussian Process Residual Learning

CoRL 2024poster

Dexterous robot hand teleoperation allows for long-range transfer of human manipulation expertise, and could simultaneously provide a way for humans to teach these skills to robots. However, current methods struggle to reproduce the functional workspace of the human hand, often limiting them to simp…

Cited by 2SourceScholar
2023

Toward Fine Contact Interactions: Learning to Control Normal Contact Force with Limited Information

ICRA 2023poster

Dexterous manipulation of objects through fine control of physical contacts is essential for many important tasks of daily living. A fundamental ability underlying fine contact control is compliant control, i.e., controlling the contact forces while moving. For robots, the most widely explored appro…

Cited by 2SourceScholar
2019

A Multi-Sensor Next-Best-View Framework for Geometric Model-Based Robotics Applications

ICRA 2019poster

Geometric models are crucial for many robotics applications. Current robotic 3D reconstruction systems only focus on specific reconstruction goals which make them hard to adapt to different tasks. In this paper we present a next-best-view framework which allows robots to construct a geometric model…

Cited by 11SourceScholar