A Context Semantic Auxiliary Network for Image Captioning

Author:

Li Jianying12ORCID,Shao Xiangjun13

Affiliation:

1. School of Computer and Electrical Engineering, Hunan University of Arts and Science, Changde 415000, China

2. Key Laboratory of Hunan Province for Control Technology of Distributed Electric Propulsion Air Vehicle, Changde 415000, China

3. School of Computer Science, Wuhan University, Wuhan 430072, China

Abstract

Image captioning is a challenging task, which generates a sentence for a given image. The earlier captioning methods mainly decode the visual features to generate caption sentences for the image. However, the visual features lack the context semantic information which is vital for generating an accurate caption sentence. To address this problem, this paper first proposes the Attention-Aware (AA) mechanism which can filter out erroneous or irrelevant context semantic information. And then, AA is utilized to constitute a Context Semantic Auxiliary Network (CSAN), which can capture the effective context semantic information to regenerate or polish the image caption. Moreover, AA can capture the visual feature information needed to generate a caption. Experimental results show that our proposed CSAN outperforms the compared image captioning methods on MS COCO “Karpathy” offline test split and the official online testing server.

Publisher

MDPI AG

Subject

Information Systems

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