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以多数人进行面部匹配:从人群中获取最佳效果。

Face matching as a majority: Getting the best from a crowd.

作者信息

Kramer Robin S S, Javorková Natália

机构信息

University of Lincoln, UK.

Palacký University Olomouc, Czech Republic.

出版信息

Perception. 2025 Feb;54(2):134-138. doi: 10.1177/03010066241303705. Epub 2024 Dec 9.

Abstract

For unfamiliar faces, deciding whether two photographs depict the same person or not can be difficult. One way to substantially improve accuracy is to defer to the 'wisdom of crowds' by aggregating responses across multiple individuals. However, there are several methods available for doing this. Here, we investigated performance in three tests of unfamiliar face matching. In all cases, we found that going with the option chosen by the majority of people provided the best approach. No benefit was found by weighting an option's popularity using average confidence, while choosing the 'surprisingly popular' option resulted in a sizeable decrease in accuracy. Therefore, rather than incorporating metacognitive judgements, we endorse a simple majority vote for this particular task.

摘要

对于不熟悉的面孔,判断两张照片是否描绘的是同一个人可能很困难。大幅提高准确性的一种方法是通过汇总多个人的反应来听从“群体智慧”。然而,有几种方法可以做到这一点。在这里,我们研究了在三项不熟悉面孔匹配测试中的表现。在所有情况下,我们发现选择大多数人选择的选项是最好的方法。使用平均置信度对选项的受欢迎程度进行加权没有发现任何好处,而选择“出人意料地受欢迎”的选项会导致准确性大幅下降。因此,对于这个特定任务,我们支持简单多数投票,而不是纳入元认知判断。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5628/11800721/b34e6576b53e/10.1177_03010066241303705-fig1.jpg

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