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Online Selection of Diverse Committees

DO, VIRGINIE; Atif, Jamal; Lang, Jérôme; Usunier, Nicolas (2021), Online Selection of Diverse Committees, in Zhou, Zhi-Hua, Proceedings of the Thirtieth International Joint Conference on Artificial Intelligence, IJCAI, p. 154-160. 10.24963/ijcai.2021/22

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Online_Do.pdf (214.9Kb)
Type
Communication / Conférence
Date
2021
Conference title
30th International Joint Conference on Artificial Intelligence
Conference date
2021-08
Conference city
Montreal
Conference country
Canada
Book title
Proceedings of the Thirtieth International Joint Conference on Artificial Intelligence
Book author
Zhou, Zhi-Hua
Publisher
IJCAI
ISBN
978-0-9992411-9-6
Pages
154-160
Publication identifier
10.24963/ijcai.2021/22
Metadata
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Author(s)
DO, VIRGINIE
Laboratoire d'analyse et modélisation de systèmes pour l'aide à la décision [LAMSADE]
Atif, Jamal
Laboratoire d'analyse et modélisation de systèmes pour l'aide à la décision [LAMSADE]
Lang, Jérôme
Laboratoire d'analyse et modélisation de systèmes pour l'aide à la décision [LAMSADE]
Usunier, Nicolas
Abstract (EN)
Citizens' assemblies need to represent subpopulations according to their proportions in the general population. These large committees are often constructed in an online fashion by contacting people, asking for the demographic features of the volunteers, and deciding to include them or not. This raises a trade-off between the number of people contacted (and the incurring cost) and the representativeness of the committee. We study three methods, theoretically and experimentally: a greedy algorithm that includes volunteers as long as proportionality is not violated; a non-adaptive method that includes a volunteer with a probability depending only on their features, assuming that the joint feature distribution in the volunteer pool is known; and a reinforcement learning based approach when this distribution is not known a priori but learnt online.
Subjects / Keywords
Planning and Scheduling; Markov Decisions Processes; Applications of Planning

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