Unsupervised Extractive Opinion Summarization Using Sparse Coding
Somnath Basu Roy Chowdhury, Chao Zhao, Snigdha Chaturvedi
Abstract
Opinion summarization is the task of automatically generating summaries that encapsulate information from multiple user reviews. We present Semantic Autoencoder (SemAE) to perform extractive opinion summarization in an unsupervised manner. SemAE uses dictionary learning to implicitly capture semantic information from the review and learns a latent representation of each sentence over semantic units. A semantic unit is supposed to capture an abstract semantic concept. Our extractive summarization algorithm leverages the representations to identify representative opinions among hundreds of reviews. Se-mAE is also able to perform controllable summarization to generate aspect-specific summaries. We report strong performance on SPACE and AMAZON datasets, and perform experiments to investigate the functioning of our model. Our code is publicly available at https://github.com/brcsomnath/SemAE .
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Cited by top-tier papers2
- Attributable and Scalable Opinion SummarizationTom Hosking, Hao Tang, Mirella LapataACL 2023 · 5 citations
- Cone: Unsupervised Contrastive Opinion ExtractionRuncong Zhao, Lin Gui, Yulan HeSIGIR 2023 · 1 citation
Builds on4
- The Curious Case of Neural Text DegenerationAri Holtzman, Jan Buys, Li Du, Maxwell Forbes et al.ICLR 2020 · 4,112 citations
- Weakly-Supervised Opinion Summarization by Leveraging External InformationChao Zhao, Snigdha ChaturvediAAAI 2020 · 22 citations
- Automatic Text Evaluation through the Lens of Wasserstein BarycentersPierre Colombo, Guillaume Staerman, Chloé Clavel, Pablo PiantanidaEMNLP 2021 · 21 citations
- Unsupervised Opinion Summarization as Copycat-Review GenerationArthur Brazinskas, Mirella Lapata, Ivan TitovACL 2020 · 14 citations
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