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首页> 外文期刊>Journal of applied mathematics >An Improved AAM Method for Extracting Human Facial Features
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An Improved AAM Method for Extracting Human Facial Features

机译:一种改进的提取人脸特征的AAM方法

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Active appearance model is a statistically parametrical model, which is widely used to extract human facial features and recognition. However, intensity values used in original AAM cannot provide enough information for image texture, which will lead to a larger error or a failure fitting of AAM. In order to overcome these defects and improve the fitting performance of AAM model, an improved texture representation is proposed in this paper. Firstly, translation invariant wavelet transform is performed on face images and then image structure is represented using the measure which is obtained by fusing the low-frequency coefficients with edge intensity. Experimental results show that the improved algorithm can increase the accuracy of the AAM fitting and express more information for structures of edge and texture.
机译:活动外观模型是一种统计参数模型,广泛用于提取人脸特征和识别。但是,原始AAM中使用的强度值不能为图像纹理提供足够的信息,这将导致更大的误差或AAM的拟合失败。为了克服这些缺陷并提高AAM模型的拟合性能,提出了一种改进的纹理表示方法。首先,对面部图像执行平移不变小波变换,然后使用通过将低频系数与边缘强度融合而获得的度量来表示图像结构。实验结果表明,改进后的算法可以提高AAM拟合的精度,并能为边缘和纹理的结构表达更多的信息。

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