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dc.contributor.authorOu, Changkun
dc.contributor.authorBuschek, Daniel
dc.contributor.authorMayer, Sven
dc.contributor.authorButz, Andreas
dc.contributor.editorMühlhäuser, Max
dc.contributor.editorReuter, Christian
dc.contributor.editorPfleging, Bastian
dc.contributor.editorKosch, Thomas
dc.contributor.editorMatviienko, Andrii
dc.contributor.editorGerling, Kathrin|Mayer, Sven
dc.contributor.editorHeuten, Wilko
dc.contributor.editorDöring, Tanja
dc.contributor.editorMüller, Florian
dc.contributor.editorSchmitz, Martin
dc.date.accessioned2022-08-31T09:42:52Z
dc.date.available2022-08-31T09:42:52Z
dc.date.issued2022
dc.identifier.urihttp://dl.gi.de/handle/20.500.12116/39211
dc.description.abstractInteractive AI systems increasingly employ a human-in-the-loop strategy. This creates new challenges for the HCI community when designing such systems. We reveal and investigate some of these challenges in a case study with an industry partner, and developed a prototype human-in-the-loop system for preference-guided 3D model processing. Two 3D artists used it in their daily work for 3 months. We found that the human-AI loop often did not converge towards a satisfactory result and designed a lab study (N=20) to investigate this further. We analyze interaction data and user feedback through the lens of theories of human judgment to explain the observed human-in-the-loop failures with two key insights: 1) optimization using preferential choices lacks mechanisms to deal with inconsistent and contradictory human judgments; 2) machine outcomes, in turn, influence future user inputs via heuristic biases and loss aversion. To mitigate these problems, we propose descriptive UI design guidelines. Our case study draws attention to challenging and practically relevant imperfections in human-AI loops that need to be considered when designing human-in-the-loop systems.en
dc.description.urihttps://dl.acm.org/doi/10.1145/3543758.3543761en
dc.language.isoen
dc.publisherACM
dc.relation.ispartofMensch und Computer 2022 - Tagungsband
dc.relation.ispartofseriesMensch und Computer
dc.subjectHuman-in-the-Loop Machine Learning
dc.subjectAdaptive Human-Computer Interaction
dc.subjectHuman Error
dc.titleThe Human in the Infinite Loop: A Case Study on Revealing and Explaining Human-AI Interaction Loop Failuresen
dc.typeText/Conference Paper
dc.pubPlaceNew York
mci.document.qualitydigidoc
mci.reference.pages158-168
mci.conference.sessiontitleMCI-SE04: Artificial Intelligence
mci.conference.locationDarmstadt
mci.conference.date4.-7. September 2022
dc.identifier.doi10.1145/3543758.3543761


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