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The 2021 Conference on Empirical Methods in Natural Language Processing 2021 (1)
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Simple Search
Hits 1 – 2 of 2
1
Transformer-based Lexically Constrained Headline Generation ...
Yamada, Kosuke
;
Hitomi, Yuta
;
Tamori, Hideaki
. - : arXiv, 2021
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2
Transformer-based Lexically Constrained Headline Generation ...
The 2021 Conference on Empirical Methods in Natural Language Processing 2021
;
Hitomi, Yuta
;
Inui, Kentaro
;
Okazaki, Naoaki
;
Sasano, Ryohei
;
Takeda, Koichi
;
Tamori, Hideaki
;
Yamada, Kosuke
. - : Underline Science Inc., 2021
Abstract:
Anthology paper link: https://aclanthology.org/2021.emnlp-main.335/ Abstract: This paper explores a variant of automatic headline generation methods, where a generated headline is required to include a given phrase such as a company or a product name. Previous methods using Transformer-based models generate a headline including a given phrase by providing the encoder with additional information corresponding to the given phrase. However, these methods cannot always include the phrase in the generated headline. Inspired by previous RNN-based methods generating token sequences in backward and forward directions from the given phrase, we propose a simple Transformerbased method that guarantees to include the given phrase in the high-quality generated headline. We also consider a new headline generation strategy that takes advantage of the controllable generation order of Transformer. Our experiments with the Japanese News Corpus demonstrate that our methods, which are guaranteed to include the phrase in the ...
Keyword:
Computational Linguistics
;
Machine Learning
;
Machine Learning and Data Mining
;
Natural Language Processing
;
Text Summarization
URL:
https://underline.io/lecture/37592-transformer-based-lexically-constrained-headline-generation
https://dx.doi.org/10.48448/v4mf-hr44
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