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Measuring the Expertise of Workers for Crowdsourcing Applications

机译:衡量工人在众包应用方面的专业知识

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Crowdsourcing platforms enable companies to propose tasks to a large crowd of users. The workers receive a compensation for their work according to the serious of the tasks they managed to accomplish. The evaluation of the quality of responses obtained from the crowd remains one of the most important problems in this context. Several methods have been proposed to estimate the expertise level of crowd workers. We propose an innovative measure of expertise assuming that we possess a dataset with an objective comparison of the items concerned. Our method is based on the definition of four factors with the theory of belief functions. We compare our method to the Fagin distance on a dataset from a real experiment, where users have to assess the quality of some audio recordings. Then, we propose to fuse both the Fagin distance and our expertise measure.
机译:众包平台使公司能够向大量用户提出任务。工人根据他们认真完成的工作的认真程度获得报酬。在这种情况下,对从人群中获得回应的质量的评估仍然是最重要的问题之一。已经提出了几种方法来估计人群工人的专业水平。假设我们拥有一个对相关项目进行客观比较的数据集,我们将提出一种创新的专业知识衡量方法。我们的方法基于使用信念函数理论对四个因素的定义。我们将我们的方法与来自真实实验的数据集上的Fagin距离进行比较,在该实验中,用户必须评估某些音频记录的质量。然后,我们建议融合Fagin距离和我们的专业知识。

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