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Deep attentive ranking networks for learning to order sentences

Journal articles
Kumar, P; Brahma, D; Karnick, H; Rai, P
Published in: Aaai 2020 34th Aaai Conference on Artificial Intelligence
January 1, 2020

We present an attention-based ranking framework for learning to order sentences given a paragraph. Our framework is built on a bidirectional sentence encoder and a self-attention based transformer network to obtain an input order invariant representation of paragraphs. Moreover, it allows seamless training using a variety of ranking based loss functions, such as pointwise, pairwise, and listwise ranking. We apply our framework on two tasks: Sentence Ordering and Order Discrimination. Our framework outperforms various state-of-the-art methods on these tasks on a variety of evaluation metrics. We also show that it achieves better results when using pairwise and listwise ranking losses, rather than the pointwise ranking loss, which suggests that incorporating relative positions of two or more sentences in the loss function contributes to better learning.

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Aaai 2020 34th Aaai Conference on Artificial Intelligence

Publication Date

January 1, 2020

Start / End Page

8115 / 8122
 

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Kumar, P., Brahma, D., Karnick, H., & Rai, P. (2020). Deep attentive ranking networks for learning to order sentences. Aaai 2020 34th Aaai Conference on Artificial Intelligence, 8115–8122.
Kumar, P., D. Brahma, H. Karnick, and P. Rai. “Deep attentive ranking networks for learning to order sentences.” Aaai 2020 34th Aaai Conference on Artificial Intelligence, January 1, 2020, 8115–22.
Kumar P, Brahma D, Karnick H, Rai P. Deep attentive ranking networks for learning to order sentences. Aaai 2020 34th Aaai Conference on Artificial Intelligence. 2020 Jan 1;8115–22.
Kumar, P., et al. “Deep attentive ranking networks for learning to order sentences.” Aaai 2020 34th Aaai Conference on Artificial Intelligence, Jan. 2020, pp. 8115–22.
Kumar P, Brahma D, Karnick H, Rai P. Deep attentive ranking networks for learning to order sentences. Aaai 2020 34th Aaai Conference on Artificial Intelligence. 2020 Jan 1;8115–8122.

Published In

Aaai 2020 34th Aaai Conference on Artificial Intelligence

Publication Date

January 1, 2020

Start / End Page

8115 / 8122