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Mixing implicit and explicit probes

Lee J. Corrigan, Christina Anne Basedow, Dennis Küster, Arvid Kappas, Christopher Peters, Ginevra Castellano

Year
2014
Citations
17

Abstract

In our work we explore the development of a computational model capable of automatically detecting engagement in social human-robot interactions from real-time sensory and contextual input. However, to train the model we need to establish ground truths of engagement from a large corpus of data collected from a study involving task and social-task engagement. Here, we intend to advance the current state-of-the-art by reducing the need for unreliable post-experiment questionnaires and costly time-consuming annotation with the novel introduction of implicit probes. A non-intrusive, pervasive and embedded method of collecting informative data at different stages of an interaction.

Keywords

Computer scienceTask (project management)AnnotationHuman–computer interactionRobotTask analysisArtificial intelligenceState (computer science)Data scienceSocial media

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