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A Weighted Rank aggregation approach towards crowd opinion analysis

机译:一种用于人群意见分析的加权秩聚合方法

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In crowd opinion aggregation models, the expertise of annotators plays an important role to derive the appropriate judgment. It is seen that in most of the aggregation methods annotators' accuracy and bias are considered as two important features and based on it the priority of annotators is assigned. But instead of relying upon these limited features, the quality of annotators can be suitably exploited using rank-based features to further improve the prediction. Basically, the annotators are ranked according to various features and therefrom multiple separate rankings are produced. These rankings, if properly weighted, can lead to obtain the final aggregated ranking in a better way. In this paper, we have developed a novel weighted rank aggregation approach and applied the same on three artificially generated ranking datasets with varying noise. Moreover, the comparative effectiveness of the proposed method is demonstrated by applying it on three Amazon Mechanical Turk datasets. (C) 2018 Elsevier B.V. All rights reserved.
机译:在群众意见汇总模型中,注释者的专业知识在得出适当的判断中起着重要的作用。可以看出,在大多数聚合方法中,注释器的准确性和偏差被认为是两个重要特征,并基于此来分配注释器的优先级。但是,不依赖于这些有限的特征,可以使用基于等级的特征来适当地利用注释器的质量,以进一步改善预测。基本上,根据各种特征对注释器进行排名,并由此产生多个单独的排名。如果对这些排名进行适当加权,可以更好地获得最终的汇总排名。在本文中,我们开发了一种新颖的加权秩聚合方法,并将其应用于三个具有可变噪声的人工生成的秩数据集。此外,通过将其应用于三个Amazon Mechanical Turk数据集,证明了该方法的比较有效性。 (C)2018 Elsevier B.V.保留所有权利。

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