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Kecheng Shi

6 accepted papers

2025

Plug-and-Play Multi-Domain Fusion Adaptation for Cross-Subject EEG-Based Motor Imagery Classification

ICRA 2025

Motor imagery (MI) classification in rehabilitation brain-computer interfaces (RBCIs) faces significant challenges due to the variability of electroencephalography (EEG) signals across subjects. Existing methods typically require extensive EEG data collection from each new subject, which is time-con

Cited by 1SourceScholar
2023

Weak6D: Weakly Supervised 6D Pose Estimation With Iterative Annotation Resolver

RA-L 2023

6D object pose estimation is an essential task in vision-based robotic grasping and manipulation. Prior works always train models with a large number of pose annotated images, limiting the efficiency of model transfer between different scenarios. This letter presents an end-to-end model named <itali

Cited by 8SourceScholar
2022

A Novel Multimodal Human-Exoskeleton Interface Based on EEG and sEMG Activity for Rehabilitation Training

ICRA 2022poster

Despite the advances in the field of human-robot interface (HRI) based on biological neural signal, the use of the sole electroencephalography (EEG) signal to help robotic exoskeleton predict the limb movement is currently no mature in rehabilitation training, due to its unreliability. Multimodal HR…

Cited by 8SourceScholar
2022

Human-exoskeleton Cooperative Balance Strategy for a Human-powered Augmentation Lower Exoskeleton

IROS 2022poster

Lower Limb Exoskeletons (LLE) have received considerable interest in strength augmentation, rehabilitation, and walking assistance scenarios. For strength augmentation, LLE is expected to have the capability of reducing metabolic energy. However, the energy for adjusting Center of Gravity (CoG) is a…

Cited by 2SourceScholar
2021

Estimating the Center of Mass of Human-Exoskeleton Systems with Physically Coupled Serial Chain

IROS 2021poster

Estimating the center of mass (CoM) is essential for both gait planning and controlling of lower limb exoskeletons. Different from CoM estimation in human and humanoid robots, a critical issue in human-exoskeleton systems pis how to describe the effect of physical human-exoskeleton interactions in e…

Cited by 1SourceScholar
2020

Data-Driven Reinforcement Learning for Walking Assistance Control of a Lower Limb Exoskeleton with Hemiplegic Patients

ICRA 2020poster

Lower limb exoskeleton (LLE) has received considerable interests in strength augmentation, rehabilitation and walking assistance scenarios. For walking assistance, the LLE is expected to have the capability of controlling the affected leg to track the unaffected leg’s motion naturally. An important…

Cited by 35SourceScholar