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Accurate face detection by combining multiple classifiers using locally assembled histograms of oriented gradients

机译:通过使用局部组装的定向梯度直方图组合多个分类器来进行准确的人脸检测

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Levi et al. [1] have introduced edge orientation histograms (EOH) into accurate face detection, and proved EOH feature to be very discriminative. However, EO-H captures too little spatial information. We propose a novel feature, which uses the same oriented histogram as EOH but contains more spatial information. It is called Locally Assembled Histogram (LAH) of Oriented Gradients. Several neighboring HOG features [2] are assembled to capture their co-occurrence. Then the feature vector is projected into a scalar by Fisher Linear Discrimination. Furthermore, several classifiers are combined during testing to improve the detection rate. One classifier is selected adaptively according to the sliding window size and the training face size. Experiments on CMU+MIT data set demonstrate that our system is better than some well known systems, such as those using EOH [1], Haar [3] or LBP [4].
机译:Levi等。文献[1]将边缘方向直方图(EOH)引入了精确的面部检测中,并证明了EOH特征具有非常高的判别力。但是,EO-H捕获的空间信息太少。我们提出了一种新颖的功能,该功能使用与EOH相同的定向直方图,但包含更多的空间信息。它被称为定向梯度的局部组装直方图(LAH)。几个相邻的HOG特征[2]被组合起来以捕获它们的共现。然后通过Fisher线性判别将特征向量投影到标量中。此外,在测试过程中将几个分类器组合在一起以提高检测率。根据滑动窗口大小和训练面部大小自适应地选择一个分类器。在CMU + MIT数据集上进行的实验表明,我们的系统比某些使用EOH [1],Haar [3]或LBP [4]的系统更好。

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