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Exploring Categorizations of Algorithmic Affordances in Graphical User Interfaces of Recommender Systems

  • Ester Bartels,
  • Aletta Smits,
  • Chris Detweiler,
  • Esther van der Stappen,
  • Suzanne van Rossen,
  • Shakila Shayan,
  • Katja Pott,
  • Karine Cardona,
  • Jürgen Ziegler,
  • Koen van Turnhout

摘要

This exploratory study investigates the rationale behind categorizing algorithmic controls, or algorithmic affordances, in the graphical user interfaces (GUIs) of recommender systems. Seven professionals from industry and academia took part in an open card sorting activity to analyze 45 cards with examples of algorithmic affordances in recommender systems’ GUIs. Their objective was to identify potential design patterns including features on which to base these patterns. Analyzing the group discussions revealed distinct thought processes and defining factors for design patterns that were shared by academic and industry partners. While the discussions were promising, they also demonstrated a varying degree of alignment between industry and academia when it came to labelling the identified categories. Since this workshop is part of the preparation for creating a design pattern library of algorithmic affordances, and since the library aims to be useful for both industry and research partners, further research into design patterns of algorithmic affordances, particularly in terms of labelling and description, is required in order to establish categories that resonate with all relevant parties.