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Shinjiro Sueda

5 accepted papers

2025

Fabrica: Dual-Arm Assembly of General Multi-Part Objects via Integrated Planning and Learning

CoRL 2025oral

Multi-part assembly poses significant challenges for robotic systems to execute long-horizon, contact-rich manipulation with generalization across complex geometries. We present a dual-arm robotic system capable of end-to-end planning and control for autonomous assembly of general multi-part objects…

Cited by 0SourceScholar
2024

ASAP: Automated Sequence Planning for Complex Robotic Assembly with Physical Feasibility

ICRA 2024poster

The automated assembly of complex products requires a system that can automatically plan a physically feasible sequence of actions for assembling many parts together. In this paper, we present ASAP, a physics-based planning approach for automatically generating such a sequence for general-shaped ass…

Cited by 23SourceScholar
2022

Efficient Tactile Simulation with Differentiability for Robotic Manipulation

CoRL 2022poster

Efficient simulation of tactile sensors can unlock new opportunities for learning tactile-based manipulation policies in simulation and then transferring the learned policy to real systems, but fast and reliable simulators for dense tactile normal and shear force fields are still under-explored. We…

Cited by 45SourceScholar
2021

An End-to-End Differentiable Framework for Contact-Aware Robot Design

RSS 2021poster

The current dominant paradigm for robotic manipulation involves two separate stages: manipulator design and control. Because the robot's morphology and how it can be controlled are intimately linked; joint optimization of design and control can significantly improve performance. Existing methods for…

2020

Prediction-Guided Multi-Objective Reinforcement Learning for Continuous Robot Control

ICML 2020poster

Many real-world control problems involve conflicting objectives where we desire a dense and high-quality set of control policies that are optimal for different objective preferences (called Pareto-optimal). While extensive research in multi-objective reinforcement learning (MORL) has been conducted…