Attend, Translate and Summarize: An Efficient Method for Neural Cross-Lingual Summarization
Junnan Zhu, Yu Zhou, Jiajun Zhang, Chengqing Zong
摘要
Cross-lingual summarization aims at summarizing a document in one language (e.g., Chinese) into another language (e.g., English). In this paper, we propose a novel method inspired by the translation pattern in the process of obtaining a cross-lingual summary. We first attend to some words in the source text, then translate them into the target language, and summarize to get the final summary. Specifically, we first employ the encoder-decoder attention distribution to attend to the source words. Second, we present three strategies to acquire the translation probability, which helps obtain the translation candidates for each source word. Finally, each summary word is generated either from the neural distribution or from the translation candidates of source words. Experimental results on Chinese-to-English and English-to-Chinese summarization tasks have shown that our proposed method can significantly outperform the baselines, achieving comparable performance with the state-of-the-art.
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- A Variational Hierarchical Model for Neural Cross-Lingual SummarizationYunlong Liang, Fandong Meng, Chulun Zhou, Jinan Xu 等ACL 2022 · 被引用 36 次
- Towards Unifying Multi-Lingual and Cross-Lingual SummarizationJiaan Wang, Fandong Meng, Duo Zheng, Yunlong Liang 等ACL 2023 · 被引用 24 次
- Assist Non-native Viewers: Multimodal Cross-Lingual Summarization for How2 VideosNayu Liu, Kaiwen Wei, Xian Sun, Hongfeng Yu 等EMNLP 2022 · 被引用 10 次
- Unifying Cross-lingual Summarization and Machine Translation with Compression RateYu Bai, Heyan Huang, Kai Fan, Yang Gao 等SIGIR 2022 · 被引用 10 次
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