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TextFlow: Towards Better Understanding of Evolving Topics in Text

Published: 01 December 2011 Publication History
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  • Abstract

    Understanding how topics evolve in text data is an important and challenging task. Although much work has been devoted to topic analysis, the study of topic evolution has largely been limited to individual topics. In this paper, we introduce TextFlow, a seamless integration of visualization and topic mining techniques, for analyzing various evolution patterns that emerge from multiple topics. We first extend an existing analysis technique to extract three-level features: the topic evolution trend, the critical event, and the keyword correlation. Then a coherent visualization that consists of three new visual components is designed to convey complex relationships between them. Through interaction, the topic mining model and visualization can communicate with each other to help users refine the analysis result and gain insights into the data progressively. Finally, two case studies are conducted to demonstrate the effectiveness and usefulness of TextFlow in helping users understand the major topic evolution patterns in time-varying text data.

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    • (2024)The HaLLMark Effect: Supporting Provenance and Transparent Use of Large Language Models in Writing with Interactive VisualizationProceedings of the CHI Conference on Human Factors in Computing Systems10.1145/3613904.3641895(1-15)Online publication date: 11-May-2024
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    • (2023)BiverWordle: Visualizing Stock Market Sentiment with Financial Text Data and TrendsProceedings of the 16th International Symposium on Visual Information Communication and Interaction10.1145/3615522.3615541(1-5)Online publication date: 22-Sep-2023
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      Published In

      cover image IEEE Transactions on Visualization and Computer Graphics
      IEEE Transactions on Visualization and Computer Graphics  Volume 17, Issue 12
      December 2011
      873 pages

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      IEEE Educational Activities Department

      United States

      Publication History

      Published: 01 December 2011

      Author Tags

      1. Critical event.
      2. Hierarchical Dirichlet process
      3. Text visualization
      4. Topic evolution

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      • (2024)The HaLLMark Effect: Supporting Provenance and Transparent Use of Large Language Models in Writing with Interactive VisualizationProceedings of the CHI Conference on Human Factors in Computing Systems10.1145/3613904.3641895(1-15)Online publication date: 11-May-2024
      • (2024)Amplifying the music listening experience through song comments on music streaming platformsJournal of Visualization10.1007/s12650-024-00966-227:3(401-419)Online publication date: 1-Jun-2024
      • (2023)BiverWordle: Visualizing Stock Market Sentiment with Financial Text Data and TrendsProceedings of the 16th International Symposium on Visual Information Communication and Interaction10.1145/3615522.3615541(1-5)Online publication date: 22-Sep-2023
      • (2023)ContextWing: Pair-wise Visual Comparison for Evolving Sequential Patterns of Contexts in Social Media Data StreamsProceedings of the ACM on Human-Computer Interaction10.1145/35794737:CSCW1(1-31)Online publication date: 16-Apr-2023
      • (2023)Portrayal: Leveraging NLP and Visualization for Analyzing Fictional CharactersProceedings of the 2023 ACM Designing Interactive Systems Conference10.1145/3563657.3596000(74-94)Online publication date: 10-Jul-2023
      • (2022)DramatVis Personae: Visual Text Analytics for Identifying Social Biases in Creative WritingProceedings of the 2022 ACM Designing Interactive Systems Conference10.1145/3532106.3533526(1260-1276)Online publication date: 13-Jun-2022
      • (2022)A Unified Understanding of Deep NLP Models for Text ClassificationIEEE Transactions on Visualization and Computer Graphics10.1109/TVCG.2022.318418628:12(4980-4994)Online publication date: 1-Dec-2022
      • (2022)Real-Time Visual Analysis of High-Volume Social Media PostsIEEE Transactions on Visualization and Computer Graphics10.1109/TVCG.2021.311480028:1(879-889)Online publication date: 1-Jan-2022
      • (2022)VisInReport: Complementing Visual Discourse Analytics Through Personalized Insight ReportsIEEE Transactions on Visualization and Computer Graphics10.1109/TVCG.2021.310402628:12(4757-4769)Online publication date: 1-Dec-2022
      • (2022)Towards a soft three-level voting model (Soft T-LVM) for fake news detectionJournal of Intelligent Information Systems10.1007/s10844-022-00769-761:1(249-269)Online publication date: 23-Dec-2022
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