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cs.RO2026

HCPG-Flow:Hierarchical Contact-Progress Guidance for Flow-Policy Robot Manipulation

Guanghu Xie, Mingxu Li, Shuo Zhang +5

Flow policies can represent multimodal action distributions for robot manipulation, yet a robot must execute one action at each control step. When several proposals are sampled, cr…

cs.RO2026

ULC: A Unified and Fine-Grained Controller for Humanoid Loco-Manipulation

Wandong Sun, Luying Feng, Baoshi Cao +3

Loco-Manipulation for humanoid robots aims to enable robots to integrate mobility with upper-body tracking capabilities. Most existing approaches adopt hierarchical architectures t…

cs.RO2025

HDCNet: A Hybrid Depth Completion Network for Grasping Transparent and Reflective Objects

Guanghu Xie, Mingxu Li, Songwei Wu +4

Depth perception of transparent and reflective objects has long been a critical challenge in robotic manipulation.Conventional depth sensors often fail to provide reliable measurem…

cs.RO2025

DCIRNet: Depth Completion with Iterative Refinement for Dexterous Grasping of Transparent and Reflective Objects

Guanghu Xie, Zhiduo Jiang, Yonglong Zhang +4

Transparent and reflective objects in everyday environments pose significant challenges for depth sensors due to their unique visual properties, such as specular reflections and li…

cs.RO2025

Learning Perceptive Humanoid Locomotion over Challenging Terrain

Wandong Sun, Baoshi Cao, Long Chen +4

Humanoid robots are engineered to navigate terrains akin to those encountered by humans, which necessitates human-like locomotion and perceptual abilities. Currently, the most reli…

cs.RO2025

Learning Humanoid Locomotion with World Model Reconstruction

Wandong Sun, Long Chen, Yongbo Su +3

Humanoid robots are designed to navigate environments accessible to humans using their legs. However, classical research has primarily focused on controlled laboratory settings, re…