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Rapid face detection using an automatic distributing detector based on fuzzy logic

机译:使用基于模糊逻辑的自动分布检测器进行快速人脸检测

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To improve the efficiency of a face detector, this paper presents an automatic distributing detector (ADD) based on the fuzzy theory to improve the performance of face detection. The main contributions lie in:l) A new Haar-like feature representation based on the fuzzy membership function is proposed, 2)The entropy of feature set is employed as choice criteria to select weak classifiers, 3) The AdaBoost algorithm is used to train weak classifiers, and 4)The distributor which can dynamically select stronger classifiers is constructed. The experiment results show that the proposed method not only determines rapidly the sub-window which contains the human face, but also tune the classifier dynamically to adaptive new samples. The accuracy and speed of our method are also promoted comparison with the state-of-art detectors. On the other hand, as for the image sub-window which is like face, according to the value of membership function, distributor can dynamically select the remaining stronger classifiers to determine. This detector can effectually improve detection speed and has better detection performance.
机译:为了提高人脸检测器的效率,本文提出了一种基于模糊理论的自动分布检测器(ADD),以提高人脸检测的性能。主要贡献在于:1)提出了一种基于模糊隶属度函数的新的类似Haar的特征表示; 2)利用特征集的熵作为选择准则,选择弱分类器; 3)采用AdaBoost算法进行训练。弱分类器; 4)构建可以动态选择更强分类器的分发器。实验结果表明,该方法不仅可以快速确定包含人脸的子窗口,而且可以动态地对分类器进行调整以适应新的自适应样本。与最新的检测器相比,我们的方法的准确性和速度也得到了提高。另一方面,对于像脸一样的图像子窗口,根据隶属度函数的值,分发者可以动态地选择剩余的更强的分类器来确定。该检测器可以有效地提高检测速度,并具有更好的检测性能。

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