AI RESEARCH
Demo-Pose: Depth-Monocular Modality Fusion For Object Pose Estimation
arXiv CS.AI
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ArXi:2603.27533v1 Announce Type: cross Object pose estimation is a fundamental task in 3D vision with applications in robotics, AR/VR, and scene understanding. We address the challenge of category-level 9-DoF pose estimation (6D pose + 3Dsize) from RGB-D input, without relying on CAD models during inference. Existing depth-only methods achieve strong results but ignore semantic cues from RGB, while many RGB-D fusion models underperform due to suboptimal cross-modal fusion that fails to align semantic RGB cues with 3D geometric representations.