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Image Keypoint Matching Using Graph Neural Networks

  • KTH Royal Institute of Technology
  • Athens Univ. of Econ. and Business

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Résumé

Image matching is a key component of many tasks in computer vision and its main objective is to find correspondences between features extracted from different natural images. When images are represented as graphs, image matching boils down to the problem of graph matching which has been studied intensively in the past. In recent years, graph neural networks have shown great potential in the graph matching task, and have also been applied to image matching. In this paper, we propose a graph neural network for the problem of image matching. The proposed method first generates initial soft correspondences between keypoints using localized node embeddings and then iteratively refines the initial correspondences using a series of graph neural network layers. We evaluate our method on natural image datasets with keypoint annotations and show that, in comparison to a state-of-the-art model, our method speeds up inference times without sacrificing prediction accuracy.

langue originaleAnglais
titreComplex Networks and Their Applications X - Volume 2, Proceedings of the 10th International Conference on Complex Networks and Their Applications COMPLEX NETWORKS 2021
rédacteurs en chefRosa Maria Benito, Chantal Cherifi, Hocine Cherifi, Esteban Moro, Luis M. Rocha, Marta Sales-Pardo
EditeurSpringer Science and Business Media Deutschland GmbH
Pages441-451
Nombre de pages11
ISBN (imprimé)9783030934125
Les DOIs
étatPublié - 1 janv. 2022
Evénement10th International Conference on Complex Networks and Their Applications, COMPLEX NETWORKS 2021 - Madrid, Espagne
Durée: 30 nov. 20212 déc. 2021

Série de publications

NomStudies in Computational Intelligence
Volume1016
ISSN (imprimé)1860-949X
ISSN (Electronique)1860-9503

Une conférence

Une conférence10th International Conference on Complex Networks and Their Applications, COMPLEX NETWORKS 2021
Pays/TerritoireEspagne
La villeMadrid
période30/11/212/12/21

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