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Head pose estimation using histogram of SIFT descriptors

机译:使用SIFT描述符的直方图估计头部姿势

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Human head pose estimation is an important issue and a great challenge in many applications such as human-computer interaction, video conferencing and driver monitoring systems which has attracted many attentions in recent decades. In this paper we propose a novel method for human head pose estimation using Histogram of SIFT descriptors. Our method contains two phases: (1) preprocessing phase (2) obtaining Feature extraction set. Finally, for classification of our feature matrix using train and test samples, we take advantage of some well-known classifiers like: SVM, BayesNet and bagging via 10-fold cross validation technique to calculate the accuracy of our proposed algorithm. Results show that our proposed method outperforms previous methods in head pose estimation in terms of accuracy and efficiency.
机译:在许多应用中,例如人机交互,视频会议和驾驶员监视系统,人头姿势估计是一个重要的问题,也是一个巨大的挑战,在最近几十年中,人头姿势估计已引起了很多关注。在本文中,我们提出了一种使用SIFT描述符直方图进行人头姿势估计的新方法。我们的方法包括两个阶段:(1)预处理阶段(2)获得特征提取集。最后,对于使用训练样本和测试样本对特征矩阵进行分类的过程,我们利用了一些著名的分类器(例如SVM,BayesNet和10倍交叉验证技术的装袋法)来计算我们提出的算法的准确性。结果表明,在准确度和效率方面,我们提出的方法优于以前的方法。

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