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Optimizing Selection of PZMI Features Based on MMAS Algorithm for Face Recognition of the Online Video Contextual Advertisement User-Oriented System

机译:优化基于MMA算法的PZMI特征选择在线视频视频上下文广告用户为导向用户的系统

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摘要

Presently, the advertising has been grown to focus on multimedia interactive model with through the Internet. The Online Video Advertisement User-oriented (OVAU) system is combined of the machine learning model for face recognition from camera, multimedia streaming protocols, and video meta-data storage technology. Face recognition is an importance phase which can improve the efficiency performance of the OVAU system. The Feature Selection (FS) for face recognition is solved by MMAS-FS algorithm used PZMI feature. The heuristic information extracted from the selected feature vector as ant's pheromone. The feature subset optimal is selected by the shortest length features and best presentation of classifier. The experiments were analyzed on face recognition show that our algorithm can be easily applied without the priori information of features. The performance evaluated of our algorithm is better than previous approaches for feature selection.
机译:目前,广告已被广泛地关注通过互联网的多媒体交互式模型。在线视频广告用户导向(OVAU)系统是从相机,多媒体流协议和视频元数据存储技术的人脸识别的机器学习模型的组合。面部识别是一种重要的阶段,可以提高ovau系统的效率性能。使用PZMI功能的MMA-FS算法解决了用于人脸识别的特征选择(FS)。从所选的特征向量中提取的启发式信息作为Ant的信息素。特征子集最佳选择是最短的长度特征和分类器的最佳演示选择。对面部识别进行了实验表明,在没有先验的功能信息的情况下,可以轻松应用我们的算法。我们的算法评估的性能优于以前的特征选择方法。

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