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System for Automatic Faces Detection

机译:自动面检测系统

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摘要

The effectiveness of biometric authentication based on face mainly depends on the method used to locate the face In the image or video. This paper presents a hybrid system for faces detection, in a color image or video, In unconstrained cases, i.e. situations in which illumination, pose, occlusion and size of the face are uncontrolled. To do this, the new method of detection proposed in this system is based primarily on a technique of automatic learning by using the decision of three neural networks, a new method of feature extraction based on the principal of energy compaction In the DC coefficient using the discrete cosine transform and a technique of segmentation by skin color to reduce the space of research and to accelerate the process of detection. A whole of pictures (faces and no faces) are transformed to vectors of data which will be used for entrain the neural networks to separate between the two classes while the discreta cosine transform is used to reduce the dimension of the vectors, to eliminate the redundancies of information, and to store only the useful information in a minimum number of coefficients. The experimental results have showed that this hybridization of methods will gave a very significant improvement of the rate of the recognition, quality of detection and the time of execution.
机译:基于脸部的生物识别认证的有效性主要取决于用于定位图像或视频中面部的方法。本文介绍了一个混合系统,用于在无约束情况下,在彩色图像或视频中,在彩色图像或视频中,即面部的照明,姿势,遮挡和面孔的尺寸是不受控制的情况。为此,该系统中提出的新的检测方法主要基于自动学习技术,通过使用三个神经网络的决定,基于使用该方法的能量压缩主体的特征提取方法离散余弦变换和肤色分割技术,以减少研究空间并加速检测过程。整个图片(面部和没有面部)被转换为数据的载体,该向量将用于纳入神经网络,以便在两个类之间分离,同时使用独立的余弦变换来减少向量的尺寸,以消除冗余信息,并仅在最小数量的系数中存储有用的信息。实验结果表明,这种方法的杂交将产生非常显着的提高识别率,检测质量和执行时间。

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