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Improving Face Detection Performance by Skin Detection Post-Processing

机译:通过皮肤检测改善面部检测性能

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Face detection is already incorporated in many biometrics and surveillance applications. Therefore, the reduction of false detections is a priority in those systems. However, face detection is still challenging. Many factors, such as pose variation and complex backgrounds, contribute to false detections. Besides, the fidelity of a true detection, measured by precision rate, is a concern in content-based information retrieval. Following those issues, combinations of methods are developed focusing on balancing the trade-off between hit-rate and miss-rate. In this paper, we present an approach that improves face detection based on a post-processing of skin features. Our method enhanced the performance of weak detectors using a straightforward and low complex skin percentage threshold constraint. Furthermore, we also present a statistical analysis comparing our approach and two face detectors, under two different conditions for skin detection training, using a robust dataset for testing. The experimental results showed a significant drop in the number of false positives, reducing in 53%, while the precision rate was elevated in almost 5% when the Viola-Jones approach was used as face detector.
机译:表面检测已经结合在许多生物识别和监视应用中。因此,减少错误检测是这些系统中的优先级。然而,面部检测仍然具有挑战性。许多因素,如姿势变化和复杂的背景,有助于虚假检测。此外,通过精确率测量的真实检测的保真度是基于内容的信息检索的关注。遵循这些问题,开发了方法的组合,重点是平衡击球和错过率之间的权衡。在本文中,我们提出了一种改进面部检测的方法,基于皮肤特征的后处理。我们的方法使用直接和低复杂的皮肤百分比阈值约束来增强弱探测器的性能。此外,我们还使用强大的数据集进行统计分析,比较我们的方法和两个面部探测器,在两个不同的皮肤检测训练条件下,使用强大的数据集进行测试。实验结果表明,误报的数量显着下降,53 %减少,而当中提琴方法用作面部检测器时,近5 %升高。

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