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Provectories: Embedding-based Analysis of Interaction Provenance Data

Publikation: Preprints, Working Paper und ForschungsberichteVorabpublikation

Abstract

Understanding user behavior patterns and visual analysis strategies is a long-standing challenge. Existing approaches rely largely on time-consuming manualprocesses such as interviews and the analysis of observational data. While it is technically possible to capture a history of user interactions and application states, it remains difficult to extract and describe analysis strategies based on interaction provenance. In this paper, we propose a novel visual approach to meta-analysis of interaction provenance. We capture single and multiple user sessions as graphs of high-dimensional application states. Our meta-analysis is based on two different types of two-dimensional embeddings of these high-dimensional states: layouts based on (i) topology and (ii) attribute similarity. We applied these visualization approaches to synthetic and real user provenance data. From our visualizations, we were able to extract patterns for data types and analytical reasoning strategies.
OriginalspracheEnglisch
Seitenumfang14
DOIs
PublikationsstatusVeröffentlicht - Dez. 2020

Publikationsreihe

NameOSF Preprints

Wissenschaftszweige

  • 102 Informatik
  • 102003 Bildverarbeitung
  • 102008 Computergraphik
  • 102015 Informationssysteme
  • 102020 Medizinische Informatik
  • 103021 Optik

JKU-Schwerpunkte

  • Digital Transformation

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