中国科学院机构知识库网格
Chinese Academy of Sciences Institutional Repositories Grid
Multimodal Summarization with Guidance of Multimodal Reference

文献类型:会议论文

作者Zhu JN(朱军楠)3,4; Zhou Y(周玉)3,4; Zhang JJ(张家俊)3,4; Li HR(李浩然)5; Zong CQ(宗成庆)2,3,4; Li ZL(李长亮)1; Li, Zhangliang; Zong, Chengqing; Zhu, Junnan; Zhou, Yu
出版日期2020-02
会议日期2020.2.7-2020.2.12
会议地点New York, USA
英文摘要

Multimodal summarization with multimodal output (MSMO) is to generate a multimodal summary for a multimodal news report, which has been proven to effectively improve users' satisfaction. The existing MSMO methods are trained by the target of text modality, leading to the modality-bias problem that ignores the quality of model-selected image during training. To alleviate this problem, we propose a multimodal objective function with the guidance of multimodal reference to use the loss from the summary generation and the image selection. Due to the lack of multimodal reference data, we present two strategies, i.e., ROUGE-ranking and Orderranking, to construct the multimodal reference by extending the text reference. Meanwhile, to better evaluate multimodal outputs, we propose a novel evaluation metric based on joint multimodal representation, projecting the model output and multimodal reference into a joint semantic space during evaluation. Experimental results have shown that our proposed model achieves the new state-of-the-art on both automatic and manual evaluation metrics. Besides, our proposed evaluation method can effectively improve the correlation with human judgments.

源文献作者Association for Computational Linguistics
会议录出版者Association for Computational Linguistics
语种英语
源URL[http://ir.ia.ac.cn/handle/173211/39084]  
专题模式识别国家重点实验室_自然语言处理
通讯作者Zhou Y(周玉); Zhou, Yu
作者单位1.Kingsoft AI Lab
2.CAS Center for Excellence in Brain Science and Intelligence Technology
3.University of Chinese Academy of Sciences
4.National Laboratory of Pattern Recognition, Institute of Automation, CAS
5.JD AI Research
推荐引用方式
GB/T 7714
Zhu JN,Zhou Y,Zhang JJ,et al. Multimodal Summarization with Guidance of Multimodal Reference[C]. 见:. New York, USA. 2020.2.7-2020.2.12.

入库方式: OAI收割

来源:自动化研究所

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