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Mathieu Gonzalez

4 accepted papers

2023

TwistSLAM++: Fusing Multiple Modalities for Accurate Dynamic Semantic SLAM

IROS 2023

Most classical SLAM systems rely on the static scene assumption, which limits their applicability in real world scenarios. Recent SLAM frameworks have been proposed to simultaneously track the camera and moving objects. However they are often unable to estimate the canonical pose of the objects and

Cited by 13SourceScholar
2021

L6DNet: Light 6 DoF Network for Robust and Precise Object Pose Estimation With Small Datasets

RA-L 2021

Estimating the 3D pose of an object is a challenging task that can be considered within augmented reality or robotic applications. In this paper, we propose a novel approach to perform 6 DoF object pose estimation from a single RGB-D image. We adopt a hybrid pipeline in two stages: data-driven and g

Cited by 11SourceScholar