Task assignment with guaranteed quality for crowdsourcing platforms

Xiaoyan Yin, Yanjiao Chen, Baochun Li
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引用次数: 21

Abstract

Crowdsourcing leverages the collective intelligence of the massive crowd workers to accomplish tasks in a cost-effective way. On a crowdsourcing platform, it is challenging to assign tasks to workers in an appropriate way due to heterogeneity in both tasks and workers. In this paper, we explore the problem of assigning workers with various skill levels to tasks with different quality requirements and budget constraints. We first formulate the task assignment as a many-to-one matching problem, in which multiple workers are assigned to a task, and the task can be successfully completed only if a minimum quality requirement can be satisfied within its limited budget. Different from traditional task assignment mechanisms which focus on utility maximization for the crowdsourcing platform, our proposed matching framework takes into consideration the preferences of individual crowdsourcers and workers towards each other. We design a novel algorithm that can generate a stable outcome for the many-to-one matching problem with lower and upper bounds (i.e., quality requirement and budget constraint), as well as heterogeneous worker skill levels. Through extensive simulations, we show that the proposed algorithm can greatly improve the success ratio of task accomplishment and worker happiness, when compared with existing algorithms.
众包平台有质量保证的任务分配
众包是利用大量人群工作者的集体智慧,以经济高效的方式完成任务。在众包平台上,由于任务和工人的异质性,以适当的方式分配任务是具有挑战性的。在本文中,我们探讨了分配不同技能水平的工人到具有不同质量要求和预算约束的任务的问题。我们首先将任务分配表述为多对一匹配问题,即将多个工人分配到一个任务中,并且只有在有限的预算范围内满足最低质量要求才能成功完成任务。与传统的任务分配机制关注众包平台的效用最大化不同,我们提出的匹配框架考虑了个体众包者和劳动者对彼此的偏好。我们设计了一种新的算法,该算法可以为具有下界和上界(即质量要求和预算约束)以及异构工人技能水平的多对一匹配问题生成稳定的结果。通过大量的仿真,我们表明,与现有算法相比,所提出的算法可以大大提高任务完成的成功率和工人的幸福感。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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