一个快速和准确的人脸检测器的索引的人脸图像

Raphaël Féraud, O. Bernier, J. Viallet, M. Collobert
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引用次数: 72

摘要

在具有复杂背景的图像中检测人脸是一项艰巨的任务。我们的方法,得到了最先进的结果,是基于生成神经网络模型:约束生成模型(CGM)。为了检测侧视面并减少误报的数量,使用了一种条件混合网络。为了减少计算时间开销,提出了一种快速搜索算法。就检测精度和处理时间而言,所达到的性能水平使我们能够将该检测器应用于现实世界的应用:WWW上人脸图像的索引。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A fast and accurate face detector for indexation of face images
Detecting faces in images with complex backgrounds is a difficult task. Our approach, which obtains state-of-the-art results, is based on a generative neural network model: the constrained generative model (CGM). To detect side-view faces and to decrease the number of false alarms, a conditional mixture of networks is used. To decrease the computational time cost, a fast search algorithm is proposed. The level of performance reached, in terms of detection accuracy and processing time, allows us to apply this detector to a real-world application: the indexation of face images on the WWW.
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