2023
DOI: 10.28991/hij-2023-04-03-011
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Trainable Regularization in Dense Image Matching Problems

Vladimir Zh. Kuklin,
Aslan A. Tatarkanov,
Alexander A. Umyskov

Abstract: This study examines the development of specialized models designed to solve image-matching problems. The purpose of this research is to develop a technique based on energy tensor aggregation for dense image matching. This task is relevant within the framework of computer systems since image comparison makes it possible to solve current problems such as reconstructing a three-dimensional model of an object, creating a panorama scene, ensuring object recognition, etc. This paper examines in detail the key featur… Show more

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Cited by 2 publications
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