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Suggestion Lists vs. Continuous Generation: Interaction Design for Writing with Generative Models on Mobile Devices Affect Text Length, Wording and Perceived Authorship

Autor(en):
Lehmann, Florian [DBLP] ;
Markert, Niklas [DBLP] ;
Dang, Hai [DBLP] ;
Buschek, Daniel [DBLP]
Zusammenfassung
Neural language models have the potential to support human writing. However, questions remain on their integration and influence on writing and output. To address this, we designed and compared two user interfaces for writing with AI on mobile devices, which manipulate levels of initiative and control: 1) Writing with continuously generated text, the AI adds text word-by-word and user steers. 2) Writing with suggestions, the AI suggests phrases and user selects from a list. In a supervised online study (N=18), participants used these prototypes and a baseline without AI. We collected touch interactions, ratings on inspiration and authorship, and interview data. With AI suggestions, people wrote less actively, yet felt they were the author. Continuously generated text reduced this perceived authorship, yet increased editing behavior. In both designs, AI increased text length and was perceived to influence wording. Our findings add new empirical evidence on the impact of UI design decisions on user experience and output with co-creative systems.
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Lehmann, F., Markert, N., Dang, H. & Buschek, D., (2022). Suggestion Lists vs. Continuous Generation: Interaction Design for Writing with Generative Models on Mobile Devices Affect Text Length, Wording and Perceived Authorship. In: Mühlhäuser, M., Reuter, C., Pfleging, B., Kosch, T., Matviienko, A., Gerling, K. S., Heuten, W., Döring, T., Müller, F. & Schmitz, M. (Hrsg.), Mensch und Computer 2022 - Tagungsband. New York: ACM. (S. 192-208). DOI: 10.1145/3543758.3543947
@inproceedings{mci/Lehmann2022,
author = {Lehmann, Florian AND Markert, Niklas AND Dang, Hai AND Buschek, Daniel},
title = {Suggestion Lists vs. Continuous Generation: Interaction Design for Writing with Generative Models on Mobile Devices Affect Text Length, Wording and Perceived Authorship},
booktitle = {Mensch und Computer 2022 - Tagungsband},
year = {2022},
editor = {Mühlhäuser, Max AND Reuter, Christian AND Pfleging, Bastian AND Kosch, Thomas AND Matviienko, Andrii AND Gerling, Kathrin|Mayer, Sven AND Heuten, Wilko AND Döring, Tanja AND Müller, Florian AND Schmitz, Martin} ,
pages = { 192-208 } ,
doi = { 10.1145/3543758.3543947 },
publisher = {ACM},
address = {New York}
}

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Mehr Information

DOI: 10.1145/3543758.3543947
Datum: 2022
Sprache: en (en)
Typ: Text/Conference Paper

Keywords

  • Mobile Text Entry
  • Typing
  • Language Model
  • Continuous Generations
  • Text Suggestions
  • Initiative
  • Control
  • Roles
  • Authorship
  • Deep Learning
  • Neural Network
  • Dataset
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  • Tagungsband MuC 2022 [90]

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Diese Digital Library basiert auf DSpace.

 

 


Über uns | FAQ | Hilfe | Impressum | Datenschutz

Gesellschaft für Informatik e.V. (GI), Kontakt: Geschäftsstelle der GI
Diese Digital Library basiert auf DSpace.