Aligning Daily Activities with Personality: Towards A Recommender System for Improving Wellbeing
September 09, 2019 Β· Declared Dead Β· π ACM Conference on Recommender Systems
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Authors
Mohammed Khwaja, Miquel Ferrer, Jesus Omana Iglesias, A. Aldo Faisal, Aleksandar Matic
arXiv ID
1909.03847
Category
cs.HC: Human-Computer Interaction
Citations
23
Venue
ACM Conference on Recommender Systems
Last Checked
4 months ago
Abstract
Recommender Systems have not been explored to a great extent for improving health and subjective wellbeing. Recent advances in mobile technologies and user modelling present the opportunity for delivering such systems, however the key issue is understanding the drivers of subjective wellbeing at an individual level. In this paper we propose a novel approach for deriving personalized activity recommendations to improve subjective wellbeing by maximizing the congruence between activities and personality traits. To evaluate the model, we leveraged a rich dataset collected in a smartphone study, which contains three weeks of daily activity probes, the Big-Five personality questionnaire and subjective wellbeing surveys. We show that the model correctly infers a range of activities that are 'good' or 'bad' (i.e. that are positively or negatively related to subjective wellbeing) for a given user and that the derived recommendations greatly match outcomes in the real-world.
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