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Please use this identifier to cite or link to this item: https://libeldoc.bsuir.by/handle/123456789/54443
Title: Generating Graphs With Specified Properties And Their Use For Constructing Scene Graphs From Images
Authors: Himbitski, A.
Himbitski, V.
Kovalev, V.
Keywords: материалы конференций;graph neural networks;generative neural networks;scene graph
Issue Date: 2023
Publisher: BSU
Citation: Himbitski, A. Generating Graphs With Specified Properties And Their Use For Constructing Scene Graphs From Images / A. Himbitski, V. Himbitski, V. Kovalev // Pattern Recognition and Information Processing (PRIP'2023) = Распознавание образов и обработка информации (2023) : Proceedings of the 16th International Conference, October 17–19, 2023, Minsk, Belarus / United Institute of Informatics Problems of the National Academy of Sciences of Belarus. – Minsk, 2023. – P. 312–315.
Abstract: Graph generation, the process of creating meaningful graphs, plays a vital role in various domains, including social network analysis, bioinformatics, recommendation systems, and network modeling. This article provides three graph generation models and also proposes the idea of constructing a scene graph using graph generation models. The where different models graph generation has been used for purposes such as social network analysis for community discovery, bioinformatics for protein interaction networks, recommendation systems for personalized recommendations, and network modeling for simulating real-world scenarios. In such models, the hidden state matrix of generated objects was used as a feature matrix. This article sets the goal of building a model with the ability to generate various types of graphs, without being tied to a specific area of application, that is, a matrix describing the structural characteristics of graphs will be used as a feature matrix. This paper develops three methods for generating graph structures with given properties using generative neural networks. The developed methods are tested on the set of Hamiltonian graphs. A comparative analysis of the quality of the generated graph structures is performed. A method of scene graph construction using the developed methods is proposed.
URI: https://libeldoc.bsuir.by/handle/123456789/54443
Appears in Collections:Pattern Recognition and Information Processing (PRIP'2023) = Распознавание образов и обработка информации (2023)

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