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Ni Ou

5 accepted papers

2026

Native-Domain Cross-Attention for Camera-LiDAR Extrinsic Calibration Under Large Initial Perturbations

RA-L 2026

Accurate camera–LiDAR fusion relies on precise extrinsic calibration, which fundamentally depends on establishing reliable cross-modal correspondences under potentially large misalignments. Existing learning-based methods typically project LiDAR points into depth maps for feature fusion, which disto

Cited by 0SourceScholar
2025

TransForce: Transferable Force Prediction for Vision-Based Tactile Sensors with Sequential Image Translation

ICRA 2025

Vision-based tactile sensors (VBTSs) provide highresolution tactile images crucial for robot in-hand manipulation. However, force sensing in VBTSs is underutilized due to the costly and time-intensive process of acquiring paired tactile images and force labels. In this study, we introduce a transfer

Cited by 10SourceScholar
2024

Deep Domain Adaptation Regression for Force Calibration of Optical Tactile Sensors

IROS 2024

Optical tactile sensors provide robots with rich force information for robot grasping in unstructured environments. The fast and accurate calibration of three-dimensional contact forces holds significance for new sensors and existing tactile sensors which may have incurred damage or aging. However,

Cited by 8SourcecodeScholar