Content Learning with Structure-Aware Writing: A Graph-Infused Dual Conditional Variational Autoencoder for Automatic Storytelling
Meng-Hsuan Yu, Juntao Li, Zhangming Chan, Rui Yan, Dongyan Zhao
摘要
Recent automatic storytelling methods mainly rely on keyword planning or plot skeleton generation to model long-range dependencies and create consistent narrative texts. However, these approaches generate story plans or plots sequentially, leaving the non-sequential conception and structural design processes of human writers unexplored. To mimic human writers and exploit the fine-grained, intrinsic structural information of each story, we decompose automatic story generation into sub-problems of graph construction, graph generation, and graph-infused sequence generation. Specifically, we propose a graph-infused dual conditional variational autoencoder model to capture multi-level intra-story structures (i.e., graph) by continuous variational latent variables and generate consistent stories through dual-infusion of story structure planning and content learning. Experimental results on the ROCStories dataset and the CMU Movie Summary corpus confirm that our proposed model outperforms strong baselines in both human judges and widely-used automatic metrics.
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引用它的顶会 Paper2
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- VMSMO: Learning to Generate Multimodal Summary for Video-based News ArticlesMingzhe Li, Xiuying Chen, Shen Gao, Zhangming Chan 等EMNLP 2020 · 被引用 65 次
- Knowledge-Enriched Visual StorytellingChao-Chun Hsu, Zi-Yuan Chen, Chi-Yang Hsu, Chih-Chia Li 等AAAI 2020 · 被引用 53 次
- A Character-Centric Neural Model for Automated Story GenerationDanyang Liu, Juntao Li, Meng-Hsuan Yu, Ziming Huang 等AAAI 2020 · 被引用 47 次
- Draft and Edit: Automatic Storytelling Through Multi-Pass Hierarchical Conditional Variational AutoencoderMeng-Hsuan Yu, Juntao Li, Danyang Liu, Bo Tang 等AAAI 2020 · 被引用 26 次
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