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A system for tracking and recognizing pedestrian faces using a network of loosely coupled cameras

机译:使用松散耦合的相机网络跟踪和识别行人面的系统

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A face recognition module has been developed for an intelligent multi-camera video surveillance system. The module can recognize a pedestrian face in terms of six basic emotions and the neutral state. Face and facial features detection (eyes, nasal root, nose and mouth) are first performed using cascades of boosted classifiers. These features are used to normalize the pose and dimension of the face image. Gabor filters are then sampled on a regular grid covering the face image to build a facial feature vector that feeds a nearest neighbor classifier with a cosine distance similarity measure for facial expression interpretation and face model construction. A graphical user interface allows the user to adjust the module parameters.
机译:已经为智能多摄像机视频监控系统开发了一种面部识别模块。 该模块可以根据六种基本情绪和中立状态识别行人面。 首先使用级联提升分类器进行面部和面部特征检测(眼睛,鼻根,鼻子和嘴巴)。 这些特征用于标准化面部图像的姿势和尺寸。 然后在覆盖面部图像的常规网格上采样Gabor滤波器以构建面部特征向量,该面部特征向量馈送具有面部表达解释和面部模型构造的余弦距离相似度量。 图形用户界面允许用户调整模块参数。

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