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On the existence of face quality measures

机译:关于面部质量措施的存在

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摘要

We investigate the existence of quality measures for face recognition. First, we introduce the concept of an oracle for image quality in the context of face recognition. Next we introduce greedy pruned ordering (GPO) as an approximation to an image quality oracle. GPO analysis provides an estimated upper bound for quality measures, given a face recognition algorithm and data set. We then assess the performance of 12 commonly proposed face image quality measures against this standard. In addition, we investigate the potential for learning new quality measures via supervised learning. Finally, we show that GPO analysis is applicable to other biometrics.
机译:我们调查存在用于面部识别的质量度量。首先,我们介绍了在面部识别环境中用于图像质量的预言机的概念。接下来,我们介绍贪婪修剪排序(GPO),作为图像质量预言的近似值。给定面部识别算法和数据集,GPO分析为质量度量提供了估计的上限。然后,我们根据该标准评估了12种通常提出的面部图像质量度量的性能。此外,我们调查了通过监督学习来学习新质量度量的潜力。最后,我们表明GPO分析适用于其他生物特征识别。

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