首页> 外文会议>Image and Signal Processing and Analysis, 2005. ISPA 2005. Proceedings of the 4th International Symposium on >A connexionist approach for robust and precise facial feature detection in complex scenes
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A connexionist approach for robust and precise facial feature detection in complex scenes

机译:一种在复杂场景中进行鲁棒且精确的面部特征检测的连接方法

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We present a technique for robustly and automatically detect a set of user-selected facial features in images, like the eye pupils, the tip of the nose, the mouth centre, etc. Based on a specific architecture of heterogeneous neural layers, the proposed system automatically synthesises simple problem-specific feature extractors and classifiers from a training set of faces with annotated facial features. After training, the facial feature detection system acts like a pipeline of simple filters that treats the raw input face image as a whole and builds global facial feature maps, where facial feature positions can easily be retrieved by a simple search for global maxima. We experimentally show that our method is very robust to lighting and pose variations as well as noise and partial occlusions.
机译:我们为强大而自动检测图像中的一种技术,并自动检测图像中的一组用户选择的面部特征,如眼睛瞳孔,鼻子的尖端,口中中心等。所提出的系统的特定架构通过带注释的面部特征自动从训练组训练组中自动综合特定于特定的特定特征提取器和分类器。在训练之后,面部特征检测系统的作用类似于简单滤波器的管道,其将原始输入面图像作为整体处理并构建全局面部特征映射,其中可以通过简单地搜索全局最大值来容易地检索面部特征位置。我们通过实验表明我们的方法对照明和姿势变化以及噪音和部分闭塞非常稳健。

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