2020
DOI: 10.48550/arxiv.2008.12147
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Good for the Many or Best for the Few? A Dilemma in the Design of Algorithmic Advice

Graham Dove,
Martina Balestra,
Devin Mann
et al.

Abstract: Applications in a range of domains, including route planning and well-being, offer advice based on the social information available in prior users' aggregated activity. When designing these applications, is it better to offer: a) advice that if strictly adhered to is more likely to result in an individual successfully achieving their goal, even if fewer users will choose to adopt it? or b) advice that is likely to be adopted by a larger number of users, but which is sub-optimal with regard to any particular in… Show more

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