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Complex Event Summarization Using Multi-Social Attribute Correlation

journal contribution
posted on 2024-11-02, 22:37 authored by Xi Chen, Xiangmin ZhouXiangmin Zhou, Jeffrey ChanJeffrey Chan, Lei Chen, Timos Sellis, Yanchun Zhang
Complex social event summarization is a problem which has been shown having great utility for real-world applications, including crisis management, rumor control and government policy tracking. In recent years there has been significant research effort spent on effectively extracting meaningful textual descriptions of an event. However, in many critical situations, social events are complex and context-sensitive, which demands the online summarization of social events in an integrated manner. In this paper, we propose the first online complex social event summarization approach, namely SOMA, which summarizes the complex social events over multiple attributes including media content and contexts simultaneously. Specifically, we first propose a deep learning model that comprehensively summarizes events in regards to the text description and locations that they appear in, by utilizing their hidden connections in posts. We then propose a summary generator over time, text and location to achieve a maximal coverage of the summary over the original social event and minimal redundancy of the summary. Furthermore, we propose a location estimation method to address the location sparsity issue of complex events by mining the correlation between text and location. The evaluation over four real-event datasets and three benchmark datasets shows that our proposed approach outperforms the existing solutions for event summarizaiton in terms of effectiveness and efficiency.

Funding

Effective and Efficient Situation Awareness in Big Social Media Data

Australian Research Council

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History

Related Materials

  1. 1.
    DOI - Is published in 10.1109/TKDE.2022.3227906
  2. 2.
    ISSN - Is published in 10414347

Journal

IEEE Transactions on Knowledge and Data Engineering

Volume

35

Issue

11

Start page

11180

End page

11195

Total pages

16

Publisher

IEEE

Place published

United States

Language

English

Copyright

© 2022 IEEE

Former Identifier

2006120512

Esploro creation date

2024-01-05