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CrowdScreen: Algorithms for Filtering Data with Humans

机译:众多:用于用人类过滤数据的算法

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Given a large set of data items, we consider the problem of filtering them based on a set of properties that can be verified by humans. This problem is commonplace in crowdsourcing applications, and yet, to our knowledge, no one has considered the formal optimization of this problem. (Typical solutions use heuristics to solve the problem.) We formally state a few different variants of this problem. We develop deterministic and probabilistic algorithms to optimize the expected cost (i.e., number of questions) and expected error. We experimentally show that our algorithms provide definite gains with respect to other strategies. Our algorithms can be applied in a variety of crowdsourcing scenarios and can form an integral part of any query processor that uses human computation.
机译:给定大量数据项,我们考虑基于可以由人类验证的一组属性过滤它们的问题。这个问题是众群应用中的普遍存在,但对于我们的知识,没有人考虑过正式优化这个问题。 (典型的解决方案使用启发式解决问题。)我们正式陈述了这个问题的一些不同变体。我们开发确定性和概率算法以优化预期成本(即,问题数量)和预期的错误。我们通过实验表明我们的算法在其他策略方面提供了明确的收益。我们的算法可以应用于各种众包中,并且可以形成使用人为计算的任何查询处理器的组成部分。

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