预测众包中员工绩效的能力需求方法

U. Hassan, E. Curry
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引用次数: 29

摘要

为员工分配异构任务是众包平台面临的一个重要挑战。当前的任务分配方法主要集中在基于内容的方法、资格或工作经历上。我们提出了一种替代和补充的方法,专注于工人使用什么能力来执行任务。首先,我们根据执行任务所需的人类能力对各种任务进行建模。其次,我们捕获在现有任务上的人群工作人员性能的能力轨迹。第三,在能力跟踪的帮助下,我们预测工作人员在新任务上的表现,以做出任务路由决策。我们评估了我们的方法在三个不同任务上的有效性,包括事实验证、图像比较和信息提取。结果表明,我们可以根据员工的能力来预测员工的绩效。我们还强调了所建议的方法的局限性和扩展。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A capability requirements approach for predicting worker performance in crowdsourcing
Assigning heterogeneous tasks to workers is an important challenge of crowdsourcing platforms. Current approaches to task assignment have primarily focused on content-based approaches, qualifications, or work history. We propose an alternative and complementary approach that focuses on what capabilities workers employ to perform tasks. First, we model various tasks according to the human capabilities required to perform them. Second, we capture the capability traces of the crowd workers performance on existing tasks. Third, we predict performance of workers on new tasks to make task routing decisions, with the help of capability traces. We evaluate the effectiveness of our approach on three different tasks including fact verification, image comparison, and information extraction. The results demonstrate that we can predict worker's performance based on worker capabilities. We also highlight limitations and extensions of the proposed approach.
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