Movie Summarization via Sparse Graph Construction
Pinelopi Papalampidi, Frank Keller, Mirella Lapata
Abstract
We summarize full-length movies by creating shorter videos containing their most informative scenes. We explore the hypothesis that a summary can be created by assembling scenes which are turning points (TPs), i.e., key events in a movie that describe its storyline. We propose a model that identifies TP scenes by building a sparse movie graph that represents relations between scenes and is constructed using multimodal information 1 . According to human judges, the summaries created by our approach are more informative and complete, and receive higher ratings, than the outputs of sequence-based models and general-purpose summarization algorithms. The induced graphs are interpretable, displaying different topology for different movie genres.
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Cited by top-tier papers6
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- Heterogeneous Graph Neural Networks for Extractive Document SummarizationDanqing Wang, Pengfei Liu, Yining Zheng, Xipeng Qiu et al.ACL 2020 · 275 citations
- A Graph-Based Framework to Bridge Movies and SynopsesYu Xiong, Qingqiu Huang, Lingfeng Guo, Hang Zhou et al.ICCV 2019 · 71 citations
- Screenplay Summarization Using Latent Narrative StructurePinelopi Papalampidi, Frank Keller, Lea Frermann, Mirella LapataACL 2020 · 8 citations
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