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arxiv: 2405.10557 · v1 · pith:DMJYDDDNnew · submitted 2024-05-17 · 💻 cs.CV

Resolving Symmetry Ambiguity in Correspondence-based Methods for Instance-level Object Pose Estimation

classification 💻 cs.CV
keywords objectambiguitycorrespondencesobjectsone-to-oneposesurfacesymmetric
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Estimating the 6D pose of an object from a single RGB image is a critical task that becomes additionally challenging when dealing with symmetric objects. Recent approaches typically establish one-to-one correspondences between image pixels and 3D object surface vertices. However, the utilization of one-to-one correspondences introduces ambiguity for symmetric objects. To address this, we propose SymCode, a symmetry-aware surface encoding that encodes the object surface vertices based on one-to-many correspondences, eliminating the problem of one-to-one correspondence ambiguity. We also introduce SymNet, a fast end-to-end network that directly regresses the 6D pose parameters without solving a PnP problem. We demonstrate faster runtime and comparable accuracy achieved by our method on the T-LESS and IC-BIN benchmarks of mostly symmetric objects. Our source code will be released upon acceptance.

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