JOURNAL ARTICLE

Attentive Gated Graph Neural Network for Image Scene Graph Generation

Shuohao LiMin TangJun ZhangLincheng Jiang

Year: 2020 Journal:   Symmetry Vol: 12 (4)Pages: 511-511   Publisher: Multidisciplinary Digital Publishing Institute

Abstract

Image scene graph is a semantic structural representation which can not only show what objects are in the image, but also infer the relationships and interactions among them. Despite the recent success in object detection using deep neural networks, automatically recognizing social relations of objects in images remains a challenging task due to the significant gap between the domains of visual content and social relation. In this work, we translate the scene graph into an Attentive Gated Graph Neural Network which can propagate a message by visual relationship embedding. More specifically, nodes in gated neural networks can represent objects in the image, and edges can be regarded as relationships among objects. In this network, an attention mechanism is applied to measure the strength of the relationship between objects. It can increase the accuracy of object classification and reduce the complexity of relationship classification. Extensive experiments on the widely adopted Visual Genome Dataset show the effectiveness of the proposed method.

Keywords:
Computer science Artificial intelligence Pattern recognition (psychology) Embedding Graph Artificial neural network Scene graph Visualization Image (mathematics) Relation (database) Graph embedding Computer vision Theoretical computer science Data mining

Metrics

6
Cited By
0.31
FWCI (Field Weighted Citation Impact)
34
Refs
0.55
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Multimodal Machine Learning Applications
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition
Domain Adaptation and Few-Shot Learning
Physical Sciences →  Computer Science →  Artificial Intelligence
Advanced Image and Video Retrieval Techniques
Physical Sciences →  Computer Science →  Computer Vision and Pattern Recognition

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