VITALITY: Promoting Serendipitous Discovery of Academic Literature with Transformers & Visual Analytics
Arpit Narechania, Alireza Karduni, Ryan Wesslen, Emily Wall
摘要
There are a few prominent practices for conducting reviews of academic literature, including searching for specific keywords on Google Scholar or checking citations from some initial seed paper(s). These approaches serve a critical purpose for academic literature reviews, yet there remain challenges in identifying relevant literature when similar work may utilize different terminology (e.g., mixed-initiative visual analytics papers may not use the same terminology as papers on model-steering, yet the two topics are relevant to one another). In this paper, we introduce a system, VITALITY, intended to complement existing practices. In particular, VITALITY promotes serendipitous discovery of relevant literature using transformer language models, allowing users to find semantically similar papers in a word embedding space given (1) a list of input paper(s) or (2) a working abstract. VITALITY visualizes this document-level embedding space in an interactive 2-D scatterplot using dimension reduction. VITALITY also summarizes meta information about the document corpus or search query, including keywords and co-authors, and allows users to save and export papers for use in a literature review. We present qualitative findings from an evaluation of VITALITY, suggesting it can be a promising complementary technique for conducting academic literature reviews. Furthermore, we contribute data from 38 popular data visualization publication venues in VITALITY, and we provide scrapers for the open-source community to continue to grow the list of supported venues.
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引用它的顶会 Paper11
- In Defence of Visual Analytics Systems: Replies to CriticsAoyu Wu, Dazhen Deng, Furui Cheng, Yingcai Wu 等IEEE VIS 2022 · 被引用 30 次
- Unveiling High-dimensional Backstage: A Survey for Reliable Visual Analytics with Dimensionality ReductionHyeon Jeon, Hyunwook Lee, Yun-Hsin Kuo, Taehyun Yang 等CHI 2025 · 被引用 29 次
- Bursting Scientific Filter Bubbles: Boosting Innovation via Novel Author DiscoveryJason Portenoy, Marissa Radensky, Jevin D. West, Eric Horvitz 等CHI 2022 · 被引用 28 次
- ConceptEVA: Concept-Based Interactive Exploration and Customization of Document SummariesXiaoyu Zhang, Jianping Kelvin Li, Po-Wei Chi, Senthil K. Chandrasegaran 等CHI 2023 · 被引用 25 次
- ProvenanceWidgets: A Library of UI Control Elements to Track and Dynamically Overlay Analytic ProvenanceArpit Narechania, Kaustubh Odak, Mennatallah El-Assady, Alex EndertIEEE VIS 2024 · 被引用 10 次
它引用的顶会 Paper4
- Left, Right, and Gender: Exploring Interaction Traces to Mitigate Human BiasesEmily Wall, Arpit Narechania, Adam Coscia, Jamal Paden 等IEEE VIS 2021 · 被引用 38 次
- Lumos: Increasing Awareness of Analytic Behavior during Visual Data AnalysisArpit Narechania, Adam Coscia, Emily Wall, Alex EndertIEEE VIS 2021 · 被引用 30 次
- Pushing the (Visual) Narrative: The Effects of Prior Knowledge Elicitation in Provocative TopicsJeremy Heyer, Nirmal Kumar Raveendranath, Khairi RedaCHI 2020 · 被引用 28 次
- SPECTER: Document-level Representation Learning using Citation-informed TransformersArman Cohan, Sergey Feldman, Iz Beltagy, Doug Downey 等ACL 2020 · 被引用 20 次
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