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Lujie Yang

8 accepted papers

2026

OmniRetarget: Interaction-Preserving Data Generation for Humanoid Whole-Body Loco-Manipulation and Scene Interaction

ICRA 2026poster

A dominant paradigm for teaching humanoid robots complex skills is to retarget human motions as kinematic references to train reinforcement learning (RL) policies. However, existing retargeting pipelines often struggle with the significant embodiment gap between humans and robots, producing physical…

2026

Perceptive Humanoid Parkour: Chaining Dynamic Human Skills via Motion Matching

RSS 2026poster

While recent advances in humanoid locomotion have achieved stable walking on varied terrains, capturing the agility and adaptivity of highly dynamic human motions remains an open challenge. In particular, agile parkour in complex environments demands not only low-level robustness, but also human-lik…

Cited by 0SourceScholar
2025

A New Semidefinite Relaxation for Linear and Piecewise-Affine Optimal Control with Time Scaling

ICRA 2025

We introduce a semidefinite relaxation for optimal control of linear systems with time scaling. These problems are inherently nonconvex, since the system dynamics involves bilinear products between the discretization time step and the system state and controls. The proposed relaxation is closely rel

Cited by 4SourceScholar
2025

Physics-Driven Data Generation for Contact-Rich Manipulation via Trajectory Optimization

RSS 2025poster

We present a low-cost data generation pipeline that integrates physics-based simulation, human demonstrations, and model-based planning to efficiently generate large-scale, high-quality datasets for contact-rich robotic manipulation tasks. Starting with a small number of embodiment-flexible human de…

Cited by 3PDFScholar
2024

Lyapunov-stable Neural Control for State and Output Feedback: A Novel Formulation

ICML 2024poster

Learning-based neural-network (NN) control policies have shown impressive empirical performance in a wide range of tasks in robotics and control. However, formal (Lyapunov) stability guarantees over the region-of-attraction (ROA) for NN controllers with nonlinear dynamical systems are challenging to…

2023

Approximate Optimal Controller Synthesis for Cart-Poles and Quadrotors via Sums-of-Squares

RA-L 2023

Sums-of-squares (SOS) optimization is a promising tool to synthesize certifiable controllers for nonlinear dynamical systems. Building upon prior works (Lasserre et al., 2008), (Jiang and Jiang, 2015), we demonstrate that SOS can synthesize dynamic controllers with bounded suboptimal performance for

Cited by 13SourceScholar
2023

Fighting Uncertainty with Gradients: Offline Reinforcement Learning via Diffusion Score Matching

CoRL 2023poster

Gradient-based methods enable efficient search capabilities in high dimensions. However, in order to apply them effectively in offline optimization paradigms such as offline Reinforcement Learning (RL) or Imitation Learning (IL), we require a more careful consideration of how uncertainty estimation…

Cited by 11SourceScholar
2021

Lyapunov-stable neural-network control

RSS 2021poster

Deep learning has had a far reaching impact in robotics. Specifically; deep reinforcement learning algorithms have been highly effective in synthesizing neural-network controllers for a wide range of tasks. However; despite this empirical success; these controllers still lack theoretical guarantees…