An Efficient and Truthful Pricing Mechanism for Team Formation in Crowdsourcing Markets
December 12, 2018 Β· Declared Dead Β· π 2015 IEEE International Conference on Communications (ICC)
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Authors
Qing Liu, Tie Luo, Ruiming Tang, Stephane Bressan
arXiv ID
1812.04865
Category
cs.GT: Game Theory
Cross-listed
cs.HC
Citations
51
Venue
2015 IEEE International Conference on Communications (ICC)
Last Checked
5 months ago
Abstract
In a crowdsourcing market, a requester is looking to form a team of workers to perform a complex task that requires a variety of skills. Candidate workers advertise their certified skills and bid prices for their participation. We design four incentive mechanisms for selecting workers to form a valid team (that can complete the task) and determining each individual worker's payment. We examine profitability, individual rationality, computational efficiency, and truthfulness for each of the four mechanisms. Our analysis shows that TruTeam, one of the four mechanisms, is superior to the others, particularly due to its computational efficiency and truthfulness. Our extensive simulations confirm the analysis and demonstrate that TruTeam is an efficient and truthful pricing mechanism for team formation in crowdsourcing markets.
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