Topic-aware Incentive Mechanism for Task Diffusion in Mobile Crowdsourcing through Social Network
Jia Xu, Yuanhang Zhou, Gongyu Chen, Yuqing Ding, Dejun Yang, Linfeng Liu
Nanjing University of Posts and Telecommunications Colorado School of Mines
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摘要与影响
Crowdsourcing has become an efficient paradigm to utilize human intelligence to perform tasks that are challenging for machines. Many incentive mechanisms for crowdsourcing systems have been proposed. However, most of existing incentive mechanisms assume that there are sufficient participants to perform crowdsourcing tasks. In large-scale crowdsourcing scenarios, this assumption may be not applicable. To address this issue, we diffuse the crowdsourcing tasks in social network to increase the number of participants. To make the task diffusion more applicable to crowdsourcing system, we enhance the classicIndependent Cascademodel so the influence is strongly connected with both the types and topics of tasks. Based on the tailored task diffusion model, we formulate theBudget Feasible Task Diffusion(BFTD) problem for maximizing the value function of platform with constrained budget. We design a parameter estimation algorithm based onExpectation Maximizationalgorithm to estimate the parameters in proposed task diffusion model. Benefitting from the submodular property of the objective function, we apply the budget-feasible incentive mechanism, which satisfies desirable properties of computational efficiency, individual rationality, budget-feasible, truthfulness, and guaranteed approximation, to stimulate the task diffusers. The simulation results based on two real-world datasets show that our incentive mechanism can improve the number of active users and the task completion rate by 9.8% and 11%, on average.
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学科主题
计算机 / AIMobile Crowdsensing and Crowdsourcing
Complex Network Analysis Techniques · Human Mobility and Location-Based Analysis
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