AttentionRank: Unsupervised Keyphrase Extraction using Self and Cross Attentions
Haoran Ding, Xiao Luo
Abstract
Keyword or keyphrase extraction is to identify words or phrases presenting the main topics of a document. This paper proposes the AttentionRank, a hybrid attention model, to identify keyphrases from a document in an unsupervised manner. AttentionRank calculates self-attention and cross-attention using a pretrained language model. The self-attention is designed to determine the importance of a candidate within the context of a sentence. The cross-attention is calculated to identify the semantic relevance between a candidate and sentences within a document. We evaluate the AttentionRank on three publicly available datasets against seven baselines. The results show that the AttentionRank is an effective and robust unsupervised keyphrase extraction model on both long and short documents. Source code is available on Github 1 .
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Cited by top-tier papers5
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- Mitigating Over-Generation for Unsupervised Keyphrase Extraction with Heterogeneous Centrality DetectionMingyang Song, Pengyu Xu, Yi Feng, Huafeng Liu et al.EMNLP 2023 · 5 citations
- HyperRank: Hyperbolic Ranking Model for Unsupervised Keyphrase ExtractionMingyang Song, Huafeng Liu, Liping JingEMNLP 2023 · 5 citations
- ERU-KG: Efficient Reference-aligned Unsupervised Keyphrase GenerationLam Thanh Do, Aaditya Bodke, Pritom Saha Akash, Kevin Chen-Chuan ChangACL 2025
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