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Towards Analyzing the Impact of Diversity and Cardinality on the Quality of Collective Prediction Using Interval Estimates

机译:运用区间估计分析多样性和基数对集体预测质量的影响

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Recently, many research results have indicated that diversity is the most important characteristic of crowd-based applications. However, it is a point estimates-based finding in which single values are used as the representation of individual predictions on a real-life cognition task. This paper presents a study on how cardinality and diversity influence the quality of collective prediction using interval estimates. By means of computational experiments, we have found that these factors positively influence the quality of collective prediction. Besides, the results also indicate that the hypothesis 'the higher the diversity, the better the quality of collective prediction ' is true. Furthermore, the findings also reveal a cardinality threshold in which its increase does not significantly influence the quality of collective prediction.
机译:最近,许多研究结果表明,多样性是基于人群的应用程序的最重要特征。但是,这是基于点估计的发现,其中单个值用作对现实生活中的认知任务的单个预测的表示。本文提出了关于基数和多样性如何影响使用区间估计的集体预测质量的研究。通过计算实验,我们发现这些因素对集体预测的质量产生积极影响。此外,结果还表明,“多样性越高,集体预测的质量越好”的假设是正确的。此外,研究结果还揭示了基数阈值,其中基数阈值的增加不会显着影响集体预测的质量。

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