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Taggle: Scalable Visualization of Tabular Data through Aggregation

  • Katarína Furmanová
  • , Samuel Gratzl
  • , Holger Stitz
  • , Thomas Zichner
  • , Miroslava Jarešová
  • , Martin Ennemoser
  • , A. Lex
  • , Marc Streit

Research output: Contribution to journalArticlepeer-review

Abstract

Visualization of tabular data---for both presentation and exploration purposes---is a well-researched area. Although effective visual presentations of complex tables are supported by various plotting libraries, creating such tables is a tedious process and requires scripting skills. In contrast, interactive table visualizations that are designed for exploration purposes either operate at the level of individual rows, where large parts of the table are accessible only via scrolling, or provide a high-level overview that often lacks context-preserving drill-down capabilities. In this work we present Taggle, a novel visualization technique for exploring and presenting large and complex tables that are composed of individual columns of categorical or numerical data and homogeneous matrices. The key contribution of Taggle is the hierarchical aggregation of data subsets, for which the user can also choose suitable visual representations.The aggregation strategy is complemented by the ability to sort hierarchically such that groups of items can be flexibly defined by combining categorical stratifications and by rich data selection and filtering capabilities. We demonstrate the usefulness of Taggle for interactive analysis and presentation of complex genomics data for the purpose of drug discovery.
Original languageEnglish
Number of pages14
JournalIEEE Transactions on Visualization and Computer Graphics
Publication statusPublished - Dec 2017

Fields of science

  • 102 Computer Sciences
  • 102003 Image processing
  • 102008 Computer graphics
  • 102015 Information systems
  • 102020 Medical informatics
  • 103021 Optics

JKU Focus areas

  • Engineering and Natural Sciences (in general)

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